-
1 when constructing the
Математика: при построении -
2 modular data center
модульный центр обработки данных (ЦОД)
-
[Интент]Параллельные тексты EN-RU
[ http://dcnt.ru/?p=9299#more-9299]
Data Centers are a hot topic these days. No matter where you look, this once obscure aspect of infrastructure is getting a lot of attention. For years, there have been cost pressures on IT operations and this, when the need for modern capacity is greater than ever, has thrust data centers into the spotlight. Server and rack density continues to rise, placing DC professionals and businesses in tighter and tougher situations while they struggle to manage their IT environments. And now hyper-scale cloud infrastructure is taking traditional technologies to limits never explored before and focusing the imagination of the IT industry on new possibilities.
В настоящее время центры обработки данных являются широко обсуждаемой темой. Куда ни посмотришь, этот некогда малоизвестный аспект инфраструктуры привлекает все больше внимания. Годами ИТ-отделы испытывали нехватку средств и это выдвинуло ЦОДы в центр внимания, в то время, когда необходимость в современных ЦОДах стала как никогда высокой. Плотность серверов и стоек продолжают расти, все больше усложняя ситуацию для специалистов в области охлаждения и организаций в их попытках управлять своими ИТ-средами. И теперь гипермасштабируемая облачная инфраструктура подвергает традиционные технологии невиданным ранее нагрузкам, и заставляет ИТ-индустрию искать новые возможности.
At Microsoft, we have focused a lot of thought and research around how to best operate and maintain our global infrastructure and we want to share those learnings. While obviously there are some aspects that we keep to ourselves, we have shared how we operate facilities daily, our technologies and methodologies, and, most importantly, how we monitor and manage our facilities. Whether it’s speaking at industry events, inviting customers to our “Microsoft data center conferences” held in our data centers, or through other media like blogging and white papers, we believe sharing best practices is paramount and will drive the industry forward. So in that vein, we have some interesting news to share.
В компании MicroSoft уделяют большое внимание изучению наилучших методов эксплуатации и технического обслуживания своей глобальной инфраструктуры и делятся результатами своих исследований. И хотя мы, конечно, не раскрываем некоторые аспекты своих исследований, мы делимся повседневным опытом эксплуатации дата-центров, своими технологиями и методологиями и, что важнее всего, методами контроля и управления своими объектами. Будь то доклады на отраслевых событиях, приглашение клиентов на наши конференции, которые посвящены центрам обработки данных MicroSoft, и проводятся в этих самых дата-центрах, или использование других средств, например, блоги и спецификации, мы уверены, что обмен передовым опытом имеет первостепенное значение и будет продвигать отрасль вперед.
Today we are sharing our Generation 4 Modular Data Center plan. This is our vision and will be the foundation of our cloud data center infrastructure in the next five years. We believe it is one of the most revolutionary changes to happen to data centers in the last 30 years. Joining me, in writing this blog are Daniel Costello, my director of Data Center Research and Engineering and Christian Belady, principal power and cooling architect. I feel their voices will add significant value to driving understanding around the many benefits included in this new design paradigm.
Сейчас мы хотим поделиться своим планом модульного дата-центра четвертого поколения. Это наше видение и оно будет основанием для инфраструктуры наших облачных дата-центров в ближайшие пять лет. Мы считаем, что это одно из самых революционных изменений в дата-центрах за последние 30 лет. Вместе со мной в написании этого блога участвовали Дэниел Костелло, директор по исследованиям и инжинирингу дата-центров, и Кристиан Белади, главный архитектор систем энергоснабжения и охлаждения. Мне кажется, что их авторитет придаст больше веса большому количеству преимуществ, включенных в эту новую парадигму проектирования.
Our “Gen 4” modular data centers will take the flexibility of containerized servers—like those in our Chicago data center—and apply it across the entire facility. So what do we mean by modular? Think of it like “building blocks”, where the data center will be composed of modular units of prefabricated mechanical, electrical, security components, etc., in addition to containerized servers.
Was there a key driver for the Generation 4 Data Center?Наши модульные дата-центры “Gen 4” будут гибкими с контейнерами серверов – как серверы в нашем чикагском дата-центре. И гибкость будет применяться ко всему ЦОД. Итак, что мы подразумеваем под модульностью? Мы думаем о ней как о “строительных блоках”, где дата-центр будет состоять из модульных блоков изготовленных в заводских условиях электрических систем и систем охлаждения, а также систем безопасности и т.п., в дополнение к контейнеризованным серверам.
Был ли ключевой стимул для разработки дата-центра четвертого поколения?
If we were to summarize the promise of our Gen 4 design into a single sentence it would be something like this: “A highly modular, scalable, efficient, just-in-time data center capacity program that can be delivered anywhere in the world very quickly and cheaply, while allowing for continued growth as required.” Sounds too good to be true, doesn’t it? Well, keep in mind that these concepts have been in initial development and prototyping for over a year and are based on cumulative knowledge of previous facility generations and the advances we have made since we began our investments in earnest on this new design.Если бы нам нужно было обобщить достоинства нашего проекта Gen 4 в одном предложении, это выглядело бы следующим образом: “Центр обработки данных с высоким уровнем модульности, расширяемости, и энергетической эффективности, а также возможностью постоянного расширения, в случае необходимости, который можно очень быстро и дешево развертывать в любом месте мира”. Звучит слишком хорошо для того чтобы быть правдой, не так ли? Ну, не забывайте, что эти концепции находились в процессе начальной разработки и создания опытного образца в течение более одного года и основываются на опыте, накопленном в ходе развития предыдущих поколений ЦОД, а также успехах, сделанных нами со времени, когда мы начали вкладывать серьезные средства в этот новый проект.
One of the biggest challenges we’ve had at Microsoft is something Mike likes to call the ‘Goldilock’s Problem’. In a nutshell, the problem can be stated as:
The worst thing we can do in delivering facilities for the business is not have enough capacity online, thus limiting the growth of our products and services.Одну из самых больших проблем, с которыми приходилось сталкиваться Майкрософт, Майк любит называть ‘Проблемой Лютика’. Вкратце, эту проблему можно выразить следующим образом:
Самое худшее, что может быть при строительстве ЦОД для бизнеса, это не располагать достаточными производственными мощностями, и тем самым ограничивать рост наших продуктов и сервисов.The second worst thing we can do in delivering facilities for the business is to have too much capacity online.
А вторым самым худшим моментом в этой сфере может слишком большое количество производственных мощностей.
This has led to a focus on smart, intelligent growth for the business — refining our overall demand picture. It can’t be too hot. It can’t be too cold. It has to be ‘Just Right!’ The capital dollars of investment are too large to make without long term planning. As we struggled to master these interesting challenges, we had to ensure that our technological plan also included solutions for the business and operational challenges we faced as well.
So let’s take a high level look at our Generation 4 designЭто заставило нас сосредоточиваться на интеллектуальном росте для бизнеса — refining our overall demand picture. Это не должно быть слишком горячим. И это не должно быть слишком холодным. Это должно быть ‘как раз, таким как надо!’ Нельзя делать такие большие капиталовложения без долгосрочного планирования. Пока мы старались решить эти интересные проблемы, мы должны были гарантировать, что наш технологический план будет также включать решения для коммерческих и эксплуатационных проблем, с которыми нам также приходилось сталкиваться.
Давайте рассмотрим наш проект дата-центра четвертого поколенияAre you ready for some great visuals? Check out this video at Soapbox. Click here for the Microsoft 4th Gen Video.
It’s a concept video that came out of my Data Center Research and Engineering team, under Daniel Costello, that will give you a view into what we think is the future.
From a configuration, construct-ability and time to market perspective, our primary goals and objectives are to modularize the whole data center. Not just the server side (like the Chicago facility), but the mechanical and electrical space as well. This means using the same kind of parts in pre-manufactured modules, the ability to use containers, skids, or rack-based deployments and the ability to tailor the Redundancy and Reliability requirements to the application at a very specific level.
Посмотрите это видео, перейдите по ссылке для просмотра видео о Microsoft 4th Gen:
Это концептуальное видео, созданное командой отдела Data Center Research and Engineering, возглавляемого Дэниелом Костелло, которое даст вам наше представление о будущем.
С точки зрения конфигурации, строительной технологичности и времени вывода на рынок, нашими главными целями и задачами агрегатирование всего дата-центра. Не только серверную часть, как дата-центр в Чикаго, но также системы охлаждения и электрические системы. Это означает применение деталей одного типа в сборных модулях, возможность использования контейнеров, салазок, или стоечных систем, а также возможность подстраивать требования избыточности и надежности для данного приложения на очень специфичном уровне.Our goals from a cost perspective were simple in concept but tough to deliver. First and foremost, we had to reduce the capital cost per critical Mega Watt by the class of use. Some applications can run with N-level redundancy in the infrastructure, others require a little more infrastructure for support. These different classes of infrastructure requirements meant that optimizing for all cost classes was paramount. At Microsoft, we are not a one trick pony and have many Online products and services (240+) that require different levels of operational support. We understand that and ensured that we addressed it in our design which will allow us to reduce capital costs by 20%-40% or greater depending upon class.
Нашими целями в области затрат были концептуально простыми, но трудно реализуемыми. В первую очередь мы должны были снизить капитальные затраты в пересчете на один мегаватт, в зависимости от класса резервирования. Некоторые приложения могут вполне работать на базе инфраструктуры с резервированием на уровне N, то есть без резервирования, а для работы других приложений требуется больше инфраструктуры. Эти разные классы требований инфраструктуры подразумевали, что оптимизация всех классов затрат имеет преобладающее значение. В Майкрософт мы не ограничиваемся одним решением и располагаем большим количеством интерактивных продуктов и сервисов (240+), которым требуются разные уровни эксплуатационной поддержки. Мы понимаем это, и учитываем это в своем проекте, который позволит нам сокращать капитальные затраты на 20%-40% или более в зависимости от класса.For example, non-critical or geo redundant applications have low hardware reliability requirements on a location basis. As a result, Gen 4 can be configured to provide stripped down, low-cost infrastructure with little or no redundancy and/or temperature control. Let’s say an Online service team decides that due to the dramatically lower cost, they will simply use uncontrolled outside air with temperatures ranging 10-35 C and 20-80% RH. The reality is we are already spec-ing this for all of our servers today and working with server vendors to broaden that range even further as Gen 4 becomes a reality. For this class of infrastructure, we eliminate generators, chillers, UPSs, and possibly lower costs relative to traditional infrastructure.
Например, некритичные или гео-избыточные системы имеют низкие требования к аппаратной надежности на основе местоположения. В результате этого, Gen 4 можно конфигурировать для упрощенной, недорогой инфраструктуры с низким уровнем (или вообще без резервирования) резервирования и / или температурного контроля. Скажем, команда интерактивного сервиса решает, что, в связи с намного меньшими затратами, они будут просто использовать некондиционированный наружный воздух с температурой 10-35°C и влажностью 20-80% RH. В реальности мы уже сегодня предъявляем эти требования к своим серверам и работаем с поставщиками серверов над еще большим расширением диапазона температур, так как наш модуль и подход Gen 4 становится реальностью. Для подобного класса инфраструктуры мы удаляем генераторы, чиллеры, ИБП, и, возможно, будем предлагать более низкие затраты, по сравнению с традиционной инфраструктурой.
Applications that demand higher level of redundancy or temperature control will use configurations of Gen 4 to meet those needs, however, they will also cost more (but still less than traditional data centers). We see this cost difference driving engineering behavioral change in that we predict more applications will drive towards Geo redundancy to lower costs.
Системы, которым требуется более высокий уровень резервирования или температурного контроля, будут использовать конфигурации Gen 4, отвечающие этим требованиям, однако, они будут также стоить больше. Но все равно они будут стоить меньше, чем традиционные дата-центры. Мы предвидим, что эти различия в затратах будут вызывать изменения в методах инжиниринга, и по нашим прогнозам, это будет выражаться в переходе все большего числа систем на гео-избыточность и меньшие затраты.
Another cool thing about Gen 4 is that it allows us to deploy capacity when our demand dictates it. Once finalized, we will no longer need to make large upfront investments. Imagine driving capital costs more closely in-line with actual demand, thus greatly reducing time-to-market and adding the capacity Online inherent in the design. Also reduced is the amount of construction labor required to put these “building blocks” together. Since the entire platform requires pre-manufacture of its core components, on-site construction costs are lowered. This allows us to maximize our return on invested capital.
Еще одно достоинство Gen 4 состоит в том, что он позволяет нам разворачивать дополнительные мощности, когда нам это необходимо. Как только мы закончим проект, нам больше не нужно будет делать большие начальные капиталовложения. Представьте себе возможность более точного согласования капитальных затрат с реальными требованиями, и тем самым значительного снижения времени вывода на рынок и интерактивного добавления мощностей, предусматриваемого проектом. Также снижен объем строительных работ, требуемых для сборки этих “строительных блоков”. Поскольку вся платформа требует предварительного изготовления ее базовых компонентов, затраты на сборку также снижены. Это позволит нам увеличить до максимума окупаемость своих капиталовложений.
Мы все подвергаем сомнениюIn our design process, we questioned everything. You may notice there is no roof and some might be uncomfortable with this. We explored the need of one and throughout our research we got some surprising (positive) results that showed one wasn’t needed.
В своем процессе проектирования мы все подвергаем сомнению. Вы, наверное, обратили внимание на отсутствие крыши, и некоторым специалистам это могло не понравиться. Мы изучили необходимость в крыше и в ходе своих исследований получили удивительные результаты, которые показали, что крыша не нужна.
Серийное производство дата центров
In short, we are striving to bring Henry Ford’s Model T factory to the data center. http://en.wikipedia.org/wiki/Henry_Ford#Model_T. Gen 4 will move data centers from a custom design and build model to a commoditized manufacturing approach. We intend to have our components built in factories and then assemble them in one location (the data center site) very quickly. Think about how a computer, car or plane is built today. Components are manufactured by different companies all over the world to a predefined spec and then integrated in one location based on demands and feature requirements. And just like Henry Ford’s assembly line drove the cost of building and the time-to-market down dramatically for the automobile industry, we expect Gen 4 to do the same for data centers. Everything will be pre-manufactured and assembled on the pad.Мы хотим применить модель автомобильной фабрики Генри Форда к дата-центру. Проект Gen 4 будет способствовать переходу от модели специализированного проектирования и строительства к товарно-производственному, серийному подходу. Мы намерены изготавливать свои компоненты на заводах, а затем очень быстро собирать их в одном месте, в месте строительства дата-центра. Подумайте о том, как сегодня изготавливается компьютер, автомобиль или самолет. Компоненты изготавливаются по заранее определенным спецификациям разными компаниями во всем мире, затем собираются в одном месте на основе спроса и требуемых характеристик. И точно так же как сборочный конвейер Генри Форда привел к значительному уменьшению затрат на производство и времени вывода на рынок в автомобильной промышленности, мы надеемся, что Gen 4 сделает то же самое для дата-центров. Все будет предварительно изготавливаться и собираться на месте.
Невероятно энергоэффективный ЦОД
And did we mention that this platform will be, overall, incredibly energy efficient? From a total energy perspective not only will we have remarkable PUE values, but the total cost of energy going into the facility will be greatly reduced as well. How much energy goes into making concrete? Will we need as much of it? How much energy goes into the fuel of the construction vehicles? This will also be greatly reduced! A key driver is our goal to achieve an average PUE at or below 1.125 by 2012 across our data centers. More than that, we are on a mission to reduce the overall amount of copper and water used in these facilities. We believe these will be the next areas of industry attention when and if the energy problem is solved. So we are asking today…“how can we build a data center with less building”?А мы упоминали, что эта платформа будет, в общем, невероятно энергоэффективной? С точки зрения общей энергии, мы получим не только поразительные значения PUE, но общая стоимость энергии, затраченной на объект будет также значительно снижена. Сколько энергии идет на производство бетона? Нам нужно будет столько энергии? Сколько энергии идет на питание инженерных строительных машин? Это тоже будет значительно снижено! Главным стимулом является достижение среднего PUE не больше 1.125 для всех наших дата-центров к 2012 году. Более того, у нас есть задача сокращения общего количества меди и воды в дата-центрах. Мы думаем, что эти задачи станут следующей заботой отрасли после того как будет решена энергетическая проблема. Итак, сегодня мы спрашиваем себя…“как можно построить дата-центр с меньшим объемом строительных работ”?
Строительство дата центров без чиллеровWe have talked openly and publicly about building chiller-less data centers and running our facilities using aggressive outside economization. Our sincerest hope is that Gen 4 will completely eliminate the use of water. Today’s data centers use massive amounts of water and we see water as the next scarce resource and have decided to take a proactive stance on making water conservation part of our plan.
Мы открыто и публично говорили о строительстве дата-центров без чиллеров и активном использовании в наших центрах обработки данных технологий свободного охлаждения или фрикулинга. Мы искренне надеемся, что Gen 4 позволит полностью отказаться от использования воды. Современные дата-центры расходуют большие объемы воды и так как мы считаем воду следующим редким ресурсом, мы решили принять упреждающие меры и включить экономию воды в свой план.
By sharing this with the industry, we believe everyone can benefit from our methodology. While this concept and approach may be intimidating (or downright frightening) to some in the industry, disclosure ultimately is better for all of us.
Делясь этим опытом с отраслью, мы считаем, что каждый сможет извлечь выгоду из нашей методологией. Хотя эта концепция и подход могут показаться пугающими (или откровенно страшными) для некоторых отраслевых специалистов, раскрывая свои планы мы, в конечном счете, делаем лучше для всех нас.
Gen 4 design (even more than just containers), could reduce the ‘religious’ debates in our industry. With the central spine infrastructure in place, containers or pre-manufactured server halls can be either AC or DC, air-side economized or water-side economized, or not economized at all (though the sanity of that might be questioned). Gen 4 will allow us to decommission, repair and upgrade quickly because everything is modular. No longer will we be governed by the initial decisions made when constructing the facility. We will have almost unlimited use and re-use of the facility and site. We will also be able to use power in an ultra-fluid fashion moving load from critical to non-critical as use and capacity requirements dictate.
Проект Gen 4 позволит уменьшить ‘религиозные’ споры в нашей отрасли. Располагая базовой инфраструктурой, контейнеры или сборные серверные могут оборудоваться системами переменного или постоянного тока, воздушными или водяными экономайзерами, или вообще не использовать экономайзеры. Хотя можно подвергать сомнению разумность такого решения. Gen 4 позволит нам быстро выполнять работы по выводу из эксплуатации, ремонту и модернизации, поскольку все будет модульным. Мы больше не будем руководствоваться начальными решениями, принятыми во время строительства дата-центра. Мы сможем использовать этот дата-центр и инфраструктуру в течение почти неограниченного периода времени. Мы также сможем применять сверхгибкие методы использования электрической энергии, переводя оборудование в режимы критической или некритической нагрузки в соответствии с требуемой мощностью.
Gen 4 – это стандартная платформаFinally, we believe this is a big game changer. Gen 4 will provide a standard platform that our industry can innovate around. For example, all modules in our Gen 4 will have common interfaces clearly defined by our specs and any vendor that meets these specifications will be able to plug into our infrastructure. Whether you are a computer vendor, UPS vendor, generator vendor, etc., you will be able to plug and play into our infrastructure. This means we can also source anyone, anywhere on the globe to minimize costs and maximize performance. We want to help motivate the industry to further innovate—with innovations from which everyone can reap the benefits.
Наконец, мы уверены, что это будет фактором, который значительно изменит ситуацию. Gen 4 будет представлять собой стандартную платформу, которую отрасль сможет обновлять. Например, все модули в нашем Gen 4 будут иметь общепринятые интерфейсы, четко определяемые нашими спецификациями, и оборудование любого поставщика, которое отвечает этим спецификациям можно будет включать в нашу инфраструктуру. Независимо от того производите вы компьютеры, ИБП, генераторы и т.п., вы сможете включать свое оборудование нашу инфраструктуру. Это означает, что мы также сможем обеспечивать всех, в любом месте земного шара, тем самым сводя до минимума затраты и максимальной увеличивая производительность. Мы хотим создать в отрасли мотивацию для дальнейших инноваций – инноваций, от которых каждый сможет получать выгоду.
Главные характеристики дата-центров четвертого поколения Gen4To summarize, the key characteristics of our Generation 4 data centers are:
Scalable
Plug-and-play spine infrastructure
Factory pre-assembled: Pre-Assembled Containers (PACs) & Pre-Manufactured Buildings (PMBs)
Rapid deployment
De-mountable
Reduce TTM
Reduced construction
Sustainable measuresНиже приведены главные характеристики дата-центров четвертого поколения Gen 4:
Расширяемость;
Готовая к использованию базовая инфраструктура;
Изготовление в заводских условиях: сборные контейнеры (PAC) и сборные здания (PMB);
Быстрота развертывания;
Возможность демонтажа;
Снижение времени вывода на рынок (TTM);
Сокращение сроков строительства;
Экологичность;Map applications to DC Class
We hope you join us on this incredible journey of change and innovation!
Long hours of research and engineering time are invested into this process. There are still some long days and nights ahead, but the vision is clear. Rest assured however, that we as refine Generation 4, the team will soon be looking to Generation 5 (even if it is a bit farther out). There is always room to get better.
Использование систем электропитания постоянного тока.
Мы надеемся, что вы присоединитесь к нам в этом невероятном путешествии по миру изменений и инноваций!
На этот проект уже потрачены долгие часы исследований и проектирования. И еще предстоит потратить много дней и ночей, но мы имеем четкое представление о конечной цели. Однако будьте уверены, что как только мы доведем до конца проект модульного дата-центра четвертого поколения, мы вскоре начнем думать о проекте дата-центра пятого поколения. Всегда есть возможность для улучшений.So if you happen to come across Goldilocks in the forest, and you are curious as to why she is smiling you will know that she feels very good about getting very close to ‘JUST RIGHT’.
Generations of Evolution – some background on our data center designsТак что, если вы встретите в лесу девочку по имени Лютик, и вам станет любопытно, почему она улыбается, вы будете знать, что она очень довольна тем, что очень близко подошла к ‘ОПИМАЛЬНОМУ РЕШЕНИЮ’.
Поколения эволюции – история развития наших дата-центровWe thought you might be interested in understanding what happened in the first three generations of our data center designs. When Ray Ozzie wrote his Software plus Services memo it posed a very interesting challenge to us. The winds of change were at ‘tornado’ proportions. That “plus Services” tag had some significant (and unstated) challenges inherent to it. The first was that Microsoft was going to evolve even further into an operations company. While we had been running large scale Internet services since 1995, this development lead us to an entirely new level. Additionally, these “services” would span across both Internet and Enterprise businesses. To those of you who have to operate “stuff”, you know that these are two very different worlds in operational models and challenges. It also meant that, to achieve the same level of reliability and performance required our infrastructure was going to have to scale globally and in a significant way.
Мы подумали, что может быть вам будет интересно узнать историю первых трех поколений наших центров обработки данных. Когда Рэй Оззи написал свою памятную записку Software plus Services, он поставил перед нами очень интересную задачу. Ветра перемен двигались с ураганной скоростью. Это окончание “plus Services” скрывало в себе какие-то значительные и неопределенные задачи. Первая заключалась в том, что Майкрософт собиралась в еще большей степени стать операционной компанией. Несмотря на то, что мы управляли большими интернет-сервисами, начиная с 1995 г., эта разработка подняла нас на абсолютно новый уровень. Кроме того, эти “сервисы” охватывали интернет-компании и корпорации. Тем, кому приходится всем этим управлять, известно, что есть два очень разных мира в области операционных моделей и задач. Это также означало, что для достижения такого же уровня надежности и производительности требовалось, чтобы наша инфраструктура располагала значительными возможностями расширения в глобальных масштабах.
It was that intense atmosphere of change that we first started re-evaluating data center technology and processes in general and our ideas began to reach farther than what was accepted by the industry at large. This was the era of Generation 1. As we look at where most of the world’s data centers are today (and where our facilities were), it represented all the known learning and design requirements that had been in place since IBM built the first purpose-built computer room. These facilities focused more around uptime, reliability and redundancy. Big infrastructure was held accountable to solve all potential environmental shortfalls. This is where the majority of infrastructure in the industry still is today.
Именно в этой атмосфере серьезных изменений мы впервые начали переоценку ЦОД-технологий и технологий вообще, и наши идеи начали выходить за пределы общепринятых в отрасли представлений. Это была эпоха ЦОД первого поколения. Когда мы узнали, где сегодня располагается большинство мировых дата-центров и где находятся наши предприятия, это представляло весь опыт и навыки проектирования, накопленные со времени, когда IBM построила первую серверную. В этих ЦОД больше внимания уделялось бесперебойной работе, надежности и резервированию. Большая инфраструктура была призвана решать все потенциальные экологические проблемы. Сегодня большая часть инфраструктуры все еще находится на этом этапе своего развития.
We soon realized that traditional data centers were quickly becoming outdated. They were not keeping up with the demands of what was happening technologically and environmentally. That’s when we kicked off our Generation 2 design. Gen 2 facilities started taking into account sustainability, energy efficiency, and really looking at the total cost of energy and operations.
Очень быстро мы поняли, что стандартные дата-центры очень быстро становятся устаревшими. Они не поспевали за темпами изменений технологических и экологических требований. Именно тогда мы стали разрабатывать ЦОД второго поколения. В этих дата-центрах Gen 2 стали принимать во внимание такие факторы как устойчивое развитие, энергетическая эффективность, а также общие энергетические и эксплуатационные.
No longer did we view data centers just for the upfront capital costs, but we took a hard look at the facility over the course of its life. Our Quincy, Washington and San Antonio, Texas facilities are examples of our Gen 2 data centers where we explored and implemented new ways to lessen the impact on the environment. These facilities are considered two leading industry examples, based on their energy efficiency and ability to run and operate at new levels of scale and performance by leveraging clean hydro power (Quincy) and recycled waste water (San Antonio) to cool the facility during peak cooling months.
Мы больше не рассматривали дата-центры только с точки зрения начальных капитальных затрат, а внимательно следили за работой ЦОД на протяжении его срока службы. Наши объекты в Куинси, Вашингтоне, и Сан-Антонио, Техас, являются образцами наших ЦОД второго поколения, в которых мы изучали и применяли на практике новые способы снижения воздействия на окружающую среду. Эти объекты считаются двумя ведущими отраслевыми примерами, исходя из их энергетической эффективности и способности работать на новых уровнях производительности, основанных на использовании чистой энергии воды (Куинси) и рециклирования отработанной воды (Сан-Антонио) для охлаждения объекта в самых жарких месяцах.
As we were delivering our Gen 2 facilities into steel and concrete, our Generation 3 facilities were rapidly driving the evolution of the program. The key concepts for our Gen 3 design are increased modularity and greater concentration around energy efficiency and scale. The Gen 3 facility will be best represented by the Chicago, Illinois facility currently under construction. This facility will seem very foreign compared to the traditional data center concepts most of the industry is comfortable with. In fact, if you ever sit around in our container hanger in Chicago it will look incredibly different from a traditional raised-floor data center. We anticipate this modularization will drive huge efficiencies in terms of cost and operations for our business. We will also introduce significant changes in the environmental systems used to run our facilities. These concepts and processes (where applicable) will help us gain even greater efficiencies in our existing footprint, allowing us to further maximize infrastructure investments.
Так как наши ЦОД второго поколения строились из стали и бетона, наши центры обработки данных третьего поколения начали их быстро вытеснять. Главными концептуальными особенностями ЦОД третьего поколения Gen 3 являются повышенная модульность и большее внимание к энергетической эффективности и масштабированию. Дата-центры третьего поколения лучше всего представлены объектом, который в настоящее время строится в Чикаго, Иллинойс. Этот ЦОД будет выглядеть очень необычно, по сравнению с общепринятыми в отрасли представлениями о дата-центре. Действительно, если вам когда-либо удастся побывать в нашем контейнерном ангаре в Чикаго, он покажется вам совершенно непохожим на обычный дата-центр с фальшполом. Мы предполагаем, что этот модульный подход будет способствовать значительному повышению эффективности нашего бизнеса в отношении затрат и операций. Мы также внесем существенные изменения в климатические системы, используемые в наших ЦОД. Эти концепции и технологии, если применимо, позволят нам добиться еще большей эффективности наших существующих дата-центров, и тем самым еще больше увеличивать капиталовложения в инфраструктуру.
This is definitely a journey, not a destination industry. In fact, our Generation 4 design has been under heavy engineering for viability and cost for over a year. While the demand of our commercial growth required us to make investments as we grew, we treated each step in the learning as a process for further innovation in data centers. The design for our future Gen 4 facilities enabled us to make visionary advances that addressed the challenges of building, running, and operating facilities all in one concerted effort.
Это определенно путешествие, а не конечный пункт назначения. На самом деле, наш проект ЦОД четвертого поколения подвергался серьезным испытаниям на жизнеспособность и затраты на протяжении целого года. Хотя необходимость в коммерческом росте требовала от нас постоянных капиталовложений, мы рассматривали каждый этап своего развития как шаг к будущим инновациям в области дата-центров. Проект наших будущих ЦОД четвертого поколения Gen 4 позволил нам делать фантастические предположения, которые касались задач строительства, управления и эксплуатации объектов как единого упорядоченного процесса.
Тематики
Синонимы
EN
Англо-русский словарь нормативно-технической терминологии > modular data center
-
3 principles of safety integration
принципы комплексной безопасности
-
[Директива 98/37/ЕЭС по машинному оборудованию]Параллельные тексты EN-RU
1.2.2. Principles of safety integration
(a) Machinery must be so constructed that it is fitted for its function, and can be adjusted and maintained without putting persons at risk when these operations are carried out under the conditions foreseen by the manufacturer.
The aim of measures taken must be to eliminate any risk of accident throughout the foreseeable lifetime of the machinery, including the phases of assembly and dismantling, even where risks of accident arise from foreseeable abnormal situations.
(b) In selecting the most appropriate methods, the manufacturer must apply the following principles, in the order given:
— eliminate or reduce risks as far as possible (inherently safe machinery design and construction),
— take the necessary protection measures in relation to risks that cannot be eliminated,
— inform users of the residual risks due to any shortcomings of the protection measures adopted, indicate whether any particular training is required and specify any need to provide personal protection equipment.
(c) When designing and constructing machinery, and when drafting the instructions, the manufacturer must envisage not only the normal use of the machinery but also uses which could reasonably be expected.
The machinery must be designed to prevent abnormal use if such use would engender a risk.In other cases the instructions must draw the user’s attention to ways — which experience has shown might occur — in which the machinery should not be used.
(d) Under the intended conditions of use, the discomfort, fatigue and psychological stress faced by the operator must be reduced to the minimum possible taking ergonomic principles into account.
(e) When designing and constructing machinery, the manufacturer must take account of the constraints to which the operator is subject as a result of the necessary or foreseeable use of personal protection equipment (such as footwear, gloves, etc.).
(f) Machinery must be supplied with all the essential special equipment and accessories to enable it to be adjusted, maintained and used without risk.
[DIRECTIVE 98/37/EC OF THE EUROPEAN PARLIAMENT AND OF THE COUNCIL]
1.1.2. Принципы комплексной безопасности.
(a) Машинное оборудование должно конструироваться так, чтобы оно выполняло заранее предусмотренные функции, и чтобы была возможность производить их наладку и техническое обслуживание, не подвергая персонал риску во время осуществления этих операций в условиях, предусмотренных изготовителем.
Целью принимаемых мер является устранение любого риска несчастного случая в течение прогнозируемого периода срока службы машинного оборудования, включая фазы сборки и демонтажа, а также когда несчастный случай может произойти вследствие возникновения чрезвычайных обстоятельств, которые невозможно было предвидеть заранее.
(b) Выбирая наиболее подходящие меры, изготовитель должен применять следующие принципы в указанном порядке:
- по возможности устранить или сократить риски (сделать изначально безопасными как конструкцию, так и собранное машинное оборудование);
- принять все необходимые меры защиты против рисков, которые не могут быть устранены;
- информировать пользователей о возможных остаточных рисках, которые могут иметь место из-за недостаточности принятых мер защиты, с описанием всей необходимой специальной подготовки персонала и всех средств личной защиты, которыми его необходимо снабдить.
(c) При конструировании и производстве машинного оборудования, а также при составлении инструкций изготовитель должен предусмотреть не только обычное использование машинного оборудования, но и потенциальное его использование.
Машинное оборудование должно быть сконструировано таким образом, чтобы предотвратить ненадлежащее его использование, если оно повлечет за собой возникновение риска. В прочих случаях инструкции должны обратить внимание пользователя на то, каким образом машинное оборудование не следует использовать (на основании уже имеющегося опыта).
(d) При надлежащих условиях использования необходимо сократить до минимума всевозможные неудобства, чувство усталости и психологического стресса, которые испытывает оператор, принимая при этом в расчет принципы эргономики.
(e) При конструировании и производстве машинного оборудования изготовитель обязан принимать во внимание скованность и ограниченность движений оператора, которые являются следствием необходимых или предусмотренных средств личной защиты (таких как специальная обувь, перчатки и т.п.).
(f) Машинное оборудование должно быть снабжено всем основным специальным оборудованием, необходимым для пуска, текущего обслуживания и безопасного использования.
[Официальный перевод]Тематики
EN
Англо-русский словарь нормативно-технической терминологии > principles of safety integration
-
4 Brindley, James
SUBJECT AREA: Canals[br]b. 1716 Tunstead, Derbyshire, Englandd. 27 September 1772 Turnhurst, Staffordshire, England[br]English canal engineer.[br]Born in a remote area and with no material advantages, Brindley followed casual rural labouring occupations until 1733, when he became apprenticed to Abraham Bennett of Macclesfield, a wheelwright and millwright. Though lacking basic education in reading and writing, he demonstrated his ability, partly through his photographic memory, to solve practical problems. This established his reputation, and after Bennett's death in 1742 he set up his own business at Leek as a millwright. His skill led to an invitation to solve the problem of mine drainage at Wet Earth Colliery, Clifton, near Manchester. He tunnelled 600 ft (183 m) through rock to provide a leat for driving a water-powered pump.Following work done on a pump on Earl Gower's estate at Trentham, Brindley's name was suggested as the engineer for the proposed canal for which the Duke of Bridge water (Francis Egerton) had obtained an Act in 1759. The Earl and the Duke were brothers-in-law, and the agents for the two estates were, in turn, the Gilbert brothers. The canal, later known as the Bridgewater Canal, was to be constructed to carry coal from the Duke's mines at Worsley into Manchester. Brindley advised on the details of its construction and recommended that it be carried across the river Irwell at Barton by means of an aqueduct. His proposals were accepted, and under his supervision the canal was constructed on a single level and opened in 1761. Brindley had also surveyed for Earl Gower a canal from the Potteries to Liverpool to carry pottery for export, and the signal success of the Bridgewater Canal ensured that the Trent and Mersey Canal would also be built. These undertakings were the start of Brindley's career as a canal engineer, and it was largely from his concepts that the canal system of the Midlands developed, following the natural contours rather than making cuttings and constructing large embankments. His canals are thus winding navigations unlike the later straight waterways, which were much easier to traverse. He also adopted the 7 ft (2.13 m) wide lock as a ruling dimension for all engineering features. For cheapness, he formed his canal tunnels without a towpath, which led to the notorious practice of legging the boats through the tunnels.Brindley surveyed a large number of projects and such was his reputation that virtually every proposal was submitted to him for his opinion. Included among these projects were the Staffordshire and Worcestershire, the Rochdale, the Birmingham network, the Droitwich, the Coventry and the Oxford canals. Although he was nominally in charge of each contract, much of the work was carried out by his assistants while he rushed from one undertaking to another to ensure that his orders were being carried out. He was nearly 50 when he married Anne Henshall, whose brother was also a canal engineer. His fees and salaries had made him very wealthy. He died in 1772 from a chill sustained when carrying out a survey of the Caldon Canal.[br]Further ReadingA.G.Banks and R.B.Schofield, 1968, Brindley at Wet Earth Colliery: An Engineering Study, Newton Abbot: David \& Charles.S.E.Buckley, 1948, James Brindley, London: Harrap.JHB -
5 Fairbairn, Sir Peter
SUBJECT AREA: Textiles[br]b. September 1799 Kelso, Roxburghshire, Scotlandd. 4 January 1861 Leeds, Yorkshire, England[br]British inventor of the revolving tube between drafting rollers to give false twist.[br]Born of Scottish parents, Fairbairn was apprenticed at the age of 14 to John Casson, a mill-wright and engineer at the Percy Main Colliery, Newcastle upon Tyne, and remained there until 1821 when he went to work for his brother William in Manchester. After going to various other places, including Messrs Rennie in London and on the European continent, he eventually moved in 1829 to Leeds where Marshall helped him set up the Wellington Foundry and so laid the foundations for the colossal establishment which was to employ over one thousand workers. To begin with he devoted his attention to improving wool-weaving machinery, substituting iron for wood in the construction of the textile machines. He also worked on machinery for flax, incorporating many of Philippe de Girard's ideas. He assisted Henry Houldsworth in the application of the differential to roving frames, and it was to these machines that he added his own inventions. The longer fibres of wool and flax need to have some form of support and control between the rollers when they are being drawn out, and inserting a little twist helps. However, if the roving is too tightly twisted before passing through the first pair of rollers, it cannot be drawn out, while if there is insufficient twist, the fibres do not receive enough support in the drafting zone. One solution is to twist the fibres together while they are actually in the drafting zone between the rollers. In 1834, Fairbairn patented an arrangement consisting of a revolving tube placed between the drawing rollers. The tube inserted a "middle" or "false" twist in the material. As stated in the specification, it was "a well-known contrivance… for twisting and untwisting any roving passing through it". It had been used earlier in 1822 by J. Goulding of the USA and a similar idea had been developed by C.Danforth in America and patented in Britain in 1825 by J.C. Dyer. Fairbairn's machine, however, was said to make a very superior article. He was also involved with waste-silk spinning and rope-yarn machinery.Fairbairn later began constructing machine tools, and at the beginning of the Crimean War was asked by the Government to make special tools for the manufacture of armaments. He supplied some of these, such as cannon rifling machines, to the arsenals at Woolwich and Enfield. He then made a considerable number of tools for the manufacture of the Armstrong gun. He was involved in the life of his adopted city and was elected to Leeds town council in 1832 for ten years. He was elected an alderman in 1854 and was Mayor of Leeds from 1857 to 1859, when he was knighted by Queen Victoria at the opening of the new town hall. He was twice married, first to Margaret Kennedy and then to Rachel Anne Brindling.[br]Principal Honours and DistinctionsKnighted 1858.Bibliography1834, British patent no. 6,741 (revolving tube between drafting rollers to give false twist).Further ReadingDictionary of National Biography.Obituary, 1861, Engineer 11.W.English, 1969, The Textile Industry, London (provides a brief account of Fairbairn's revolving tube).C.Singer (ed.), 1958, A History of Technology, Vols IV and V, Oxford: Clarendon Press (provides details of Fairbairn's silk-dressing machine and a picture of a large planing machine built by him).RLH -
6 Jobard, Jean-Baptiste-Ambroise Marcelin
SUBJECT AREA: Mining and extraction technology[br]b. 14 May 1792 Baissey, Haute-Marne, Franced. 27 October 1861 Brussels, Belgium[br]French technologist, promoter of Belgian industry.[br]After attending schools in Langres and Dijon, Jobard worked in Groningen and Maastricht as a cadastral officer from 1811 onwards. After the Netherlands had been constituted as a new state in 1814, he became a Dutch citizen in 1815 and settled in Brussels. In 1825, when he had learned of the invention of lithography by Alois Senefelder, he retired and established a renowned lithographic workshop in Belgium, with considerable commercial profit. After the political changes which led to the separation of Belgium from the Netherlands in 1830, he devoted his activities to the progress of science and industry in this country, in the traditional idea of enlightenment. His main aim was to promote all branches of the young economy, to which he contributed with ceaseless energy. He cultivated especially the transfer of technology in many articles he wrote on his various journeys, such as to Britain, France, Germany and Switzerland, and he continued to do so when he became the Director of the Museum of Industry in Brussels in 1841, editing its Bulletin until his death. Jobard, as a member of societies for the encouragement of arts and industry in many countries, published on almost any subject and produced many inventions. Being a restless character by nature, and having, in addition, a strong attitude towards designing and constructing, he also contributed to mining technology in 1828 when he was the first European to practise successfully the Chinese method of rope drilling near Brussels.[br]Bibliography1840, Plan d'organisation du Musée de l'industrie, présenté au Ministre de l'interieur, Brussels.1844, Machines à vapeur, arrêtes et instructions, Brussels.1846, Comment la Belgique peut devenir industrielle, à propos de la Société d'exportation, Brussels.considérées comme blason de l'industrie et du commerce, dédié à la Société des inventeurs et protecteurs de l'industrie, Brussels.1855, Discours prononcé à l'assemblée des industriels réunis pour l'adoption de la marque obligatoire, Paris.Further ReadingH.Blémont, 1991, article in Dictionnaire de biographie française, Paris, pp. 676–7 (for a short account of his life).A.Siret, 1888–9, article in Biographie nationale de belgique, Vol. X, Brussels, col. 494– 500 (provides an impressive description of his restless character and a selected bibliography of his many publications.T.Tecklenburg, 1900, Handbuch der Tiefbohrkunde, 2nd edn, Vol. IV, Berlin, pp. 7–8 (contains detailed information on his method of rope drilling).WKBiographical history of technology > Jobard, Jean-Baptiste-Ambroise Marcelin
-
7 Hargreaves, James
SUBJECT AREA: Textiles[br]b. c.1720–1 Oswaldtwistle, near Blackburn, Englandd. April 1778 Nottingham, England[br]English inventor of the first successful machine to spin more than a couple of yarns of cotton or wool at once.[br]James Hargreaves was first a carpenter and then a hand-loom weaver at Stanhill, Blackburn, probably making Blackburn Checks or Greys from linen warps and cotton weft. An invention ascribed to him doubled production in the preparatory carding process before spinning. Two or three cards were nailed to the same stock and the upper one was suspended from the ceiling by a cord and counterweight. Around 1762 Robert Peel (1750–1830) sought his assistance in constructing a carding engine with cylinders that may have originated with Daniel Bourn, but this was not successful. In 1764, inspired by seeing a spinning wheel that continued to revolve after it had been knocked over accidentally, Hargreaves invented his spinning jenny. The first jennies had horizontal wheels and could spin eight threads at once. To spin on this machine required a great deal of skill. A length of roving was passed through the clamp or clove. The left hand was used to close this and draw the roving away from the spindles which were rotated by the spinner turning the horizontal wheel with the right hand. The spindles twisted the fibres as they were being drawn out. At the end of the draw, the spindles continued to be rotated until sufficient twist had been put into the fibres to make the finished yarn. This was backed off from the tips of the spindles by reversing them and then, with the spindles turning in the spinning direction once more, the yarn was wound on by the right hand rotating the spindles, the left hand pushing the clove back towards them and one foot operating a pedal which guided the yarn onto the spindles by a faller wire. A piecer was needed to rejoin the yarns when they broke. At first Hargreaves's jenny was worked only by his family, but then he sold two or three of them, possibly to Peel. In 1768, local opposition and a riot in which his house was gutted forced him to flee to Nottingham. He entered into partnership there with Thomas James and established a cotton mill. In 1770 he followed Arkwright's example and sought to patent his machine and brought an action for infringement against some Lancashire manufacturers, who offered £3,000 in settlement. Hargreaves held out for £4,000, but he was unable to enforce his patent because he had sold jennies before leaving Lancashire. Arkwright's "water twist" was more suitable for the Nottingham hosiery industry trade than jenny yarn and in 1777 Hargreaves replaced his own machines with Arkwright's. When he died the following year, he is said to have left property valued at £7,000 and his widow received £400 for her share in the business. Once the jenny had been made public, it was quickly improved by other inventors and the number of spindles per machine increased. In 1784, there were reputed to be 20,000 jennies of 80 spindles each at work. The jenny greatly eased the shortage of cotton weft for weavers.[br]Bibliography1770, British patent no. 962 (spinning jenny).Further ReadingC.Aspin and S.D.Chapman, 1964, James Hargreaves and the Spinning Jenny, Helmshore Local History Society (the fullest account of Hargreaves's life and inventions).For descriptions of his invention, see W.English, 1969, The Textile Industry, London; R.L. Hills, 1970, Power in the Industrial Revolution, Manchester; and W.A.Hunter, 1951–3, "James Hargreaves and the invention of the spinning jenny", Transactions ofthe Newcomen Society 28.A.P.Wadsworth and J. de L.Mann, 1931, The Cotton Trade and Industrial Lancashire, Manchester (a good background to the whole of this period).RLH -
8 Language
Philosophy is written in that great book, the universe, which is always open, right before our eyes. But one cannot understand this book without first learning to understand the language and to know the characters in which it is written. It is written in the language of mathematics, and the characters are triangles, circles, and other figures. Without these, one cannot understand a single word of it, and just wanders in a dark labyrinth. (Galileo, 1990, p. 232)It never happens that it [a nonhuman animal] arranges its speech in various ways in order to reply appropriately to everything that may be said in its presence, as even the lowest type of man can do. (Descartes, 1970a, p. 116)It is a very remarkable fact that there are none so depraved and stupid, without even excepting idiots, that they cannot arrange different words together, forming of them a statement by which they make known their thoughts; while, on the other hand, there is no other animal, however perfect and fortunately circumstanced it may be, which can do the same. (Descartes, 1967, p. 116)Human beings do not live in the object world alone, nor alone in the world of social activity as ordinarily understood, but are very much at the mercy of the particular language which has become the medium of expression for their society. It is quite an illusion to imagine that one adjusts to reality essentially without the use of language and that language is merely an incidental means of solving specific problems of communication or reflection. The fact of the matter is that the "real world" is to a large extent unconsciously built on the language habits of the group.... We see and hear and otherwise experience very largely as we do because the language habits of our community predispose certain choices of interpretation. (Sapir, 1921, p. 75)It powerfully conditions all our thinking about social problems and processes.... No two languages are ever sufficiently similar to be considered as representing the same social reality. The worlds in which different societies live are distinct worlds, not merely the same worlds with different labels attached. (Sapir, 1985, p. 162)[A list of language games, not meant to be exhaustive:]Giving orders, and obeying them- Describing the appearance of an object, or giving its measurements- Constructing an object from a description (a drawing)Reporting an eventSpeculating about an eventForming and testing a hypothesisPresenting the results of an experiment in tables and diagramsMaking up a story; and reading itPlay actingSinging catchesGuessing riddlesMaking a joke; and telling itSolving a problem in practical arithmeticTranslating from one language into anotherLANGUAGE Asking, thanking, cursing, greeting, and praying-. (Wittgenstein, 1953, Pt. I, No. 23, pp. 11 e-12 e)We dissect nature along lines laid down by our native languages.... The world is presented in a kaleidoscopic flux of impressions which has to be organized by our minds-and this means largely by the linguistic systems in our minds.... No individual is free to describe nature with absolute impartiality but is constrained to certain modes of interpretation even while he thinks himself most free. (Whorf, 1956, pp. 153, 213-214)We dissect nature along the lines laid down by our native languages.The categories and types that we isolate from the world of phenomena we do not find there because they stare every observer in the face; on the contrary, the world is presented in a kaleidoscopic flux of impressions which has to be organized by our minds-and this means largely by the linguistic systems in our minds.... We are thus introduced to a new principle of relativity, which holds that all observers are not led by the same physical evidence to the same picture of the universe, unless their linguistic backgrounds are similar or can in some way be calibrated. (Whorf, 1956, pp. 213-214)9) The Forms of a Person's Thoughts Are Controlled by Unperceived Patterns of His Own LanguageThe forms of a person's thoughts are controlled by inexorable laws of pattern of which he is unconscious. These patterns are the unperceived intricate systematizations of his own language-shown readily enough by a candid comparison and contrast with other languages, especially those of a different linguistic family. (Whorf, 1956, p. 252)It has come to be commonly held that many utterances which look like statements are either not intended at all, or only intended in part, to record or impart straightforward information about the facts.... Many traditional philosophical perplexities have arisen through a mistake-the mistake of taking as straightforward statements of fact utterances which are either (in interesting non-grammatical ways) nonsensical or else intended as something quite different. (Austin, 1962, pp. 2-3)In general, one might define a complex of semantic components connected by logical constants as a concept. The dictionary of a language is then a system of concepts in which a phonological form and certain syntactic and morphological characteristics are assigned to each concept. This system of concepts is structured by several types of relations. It is supplemented, furthermore, by redundancy or implicational rules..., representing general properties of the whole system of concepts.... At least a relevant part of these general rules is not bound to particular languages, but represents presumably universal structures of natural languages. They are not learned, but are rather a part of the human ability to acquire an arbitrary natural language. (Bierwisch, 1970, pp. 171-172)In studying the evolution of mind, we cannot guess to what extent there are physically possible alternatives to, say, transformational generative grammar, for an organism meeting certain other physical conditions characteristic of humans. Conceivably, there are none-or very few-in which case talk about evolution of the language capacity is beside the point. (Chomsky, 1972, p. 98)[It is] truth value rather than syntactic well-formedness that chiefly governs explicit verbal reinforcement by parents-which renders mildly paradoxical the fact that the usual product of such a training schedule is an adult whose speech is highly grammatical but not notably truthful. (R. O. Brown, 1973, p. 330)he conceptual base is responsible for formally representing the concepts underlying an utterance.... A given word in a language may or may not have one or more concepts underlying it.... On the sentential level, the utterances of a given language are encoded within a syntactic structure of that language. The basic construction of the sentential level is the sentence.The next highest level... is the conceptual level. We call the basic construction of this level the conceptualization. A conceptualization consists of concepts and certain relations among those concepts. We can consider that both levels exist at the same point in time and that for any unit on one level, some corresponding realizate exists on the other level. This realizate may be null or extremely complex.... Conceptualizations may relate to other conceptualizations by nesting or other specified relationships. (Schank, 1973, pp. 191-192)The mathematics of multi-dimensional interactive spaces and lattices, the projection of "computer behavior" on to possible models of cerebral functions, the theoretical and mechanical investigation of artificial intelligence, are producing a stream of sophisticated, often suggestive ideas.But it is, I believe, fair to say that nothing put forward until now in either theoretic design or mechanical mimicry comes even remotely in reach of the most rudimentary linguistic realities. (Steiner, 1975, p. 284)The step from the simple tool to the master tool, a tool to make tools (what we would now call a machine tool), seems to me indeed to parallel the final step to human language, which I call reconstitution. It expresses in a practical and social context the same understanding of hierarchy, and shows the same analysis by function as a basis for synthesis. (Bronowski, 1977, pp. 127-128)t is the language donn eґ in which we conduct our lives.... We have no other. And the danger is that formal linguistic models, in their loosely argued analogy with the axiomatic structure of the mathematical sciences, may block perception.... It is quite conceivable that, in language, continuous induction from simple, elemental units to more complex, realistic forms is not justified. The extent and formal "undecidability" of context-and every linguistic particle above the level of the phoneme is context-bound-may make it impossible, except in the most abstract, meta-linguistic sense, to pass from "pro-verbs," "kernals," or "deep deep structures" to actual speech. (Steiner, 1975, pp. 111-113)A higher-level formal language is an abstract machine. (Weizenbaum, 1976, p. 113)Jakobson sees metaphor and metonymy as the characteristic modes of binarily opposed polarities which between them underpin the two-fold process of selection and combination by which linguistic signs are formed.... Thus messages are constructed, as Saussure said, by a combination of a "horizontal" movement, which combines words together, and a "vertical" movement, which selects the particular words from the available inventory or "inner storehouse" of the language. The combinative (or syntagmatic) process manifests itself in contiguity (one word being placed next to another) and its mode is metonymic. The selective (or associative) process manifests itself in similarity (one word or concept being "like" another) and its mode is metaphoric. The "opposition" of metaphor and metonymy therefore may be said to represent in effect the essence of the total opposition between the synchronic mode of language (its immediate, coexistent, "vertical" relationships) and its diachronic mode (its sequential, successive, lineal progressive relationships). (Hawkes, 1977, pp. 77-78)It is striking that the layered structure that man has given to language constantly reappears in his analyses of nature. (Bronowski, 1977, p. 121)First, [an ideal intertheoretic reduction] provides us with a set of rules"correspondence rules" or "bridge laws," as the standard vernacular has it-which effect a mapping of the terms of the old theory (T o) onto a subset of the expressions of the new or reducing theory (T n). These rules guide the application of those selected expressions of T n in the following way: we are free to make singular applications of their correspondencerule doppelgangers in T o....Second, and equally important, a successful reduction ideally has the outcome that, under the term mapping effected by the correspondence rules, the central principles of T o (those of semantic and systematic importance) are mapped onto general sentences of T n that are theorems of Tn. (P. Churchland, 1979, p. 81)If non-linguistic factors must be included in grammar: beliefs, attitudes, etc. [this would] amount to a rejection of the initial idealization of language as an object of study. A priori such a move cannot be ruled out, but it must be empirically motivated. If it proves to be correct, I would conclude that language is a chaos that is not worth studying.... Note that the question is not whether beliefs or attitudes, and so on, play a role in linguistic behavior and linguistic judgments... [but rather] whether distinct cognitive structures can be identified, which interact in the real use of language and linguistic judgments, the grammatical system being one of these. (Chomsky, 1979, pp. 140, 152-153)23) Language Is Inevitably Influenced by Specific Contexts of Human InteractionLanguage cannot be studied in isolation from the investigation of "rationality." It cannot afford to neglect our everyday assumptions concerning the total behavior of a reasonable person.... An integrational linguistics must recognize that human beings inhabit a communicational space which is not neatly compartmentalized into language and nonlanguage.... It renounces in advance the possibility of setting up systems of forms and meanings which will "account for" a central core of linguistic behavior irrespective of the situation and communicational purposes involved. (Harris, 1981, p. 165)By innate [linguistic knowledge], Chomsky simply means "genetically programmed." He does not literally think that children are born with language in their heads ready to be spoken. He merely claims that a "blueprint is there, which is brought into use when the child reaches a certain point in her general development. With the help of this blueprint, she analyzes the language she hears around her more readily than she would if she were totally unprepared for the strange gabbling sounds which emerge from human mouths. (Aitchison, 1987, p. 31)Looking at ourselves from the computer viewpoint, we cannot avoid seeing that natural language is our most important "programming language." This means that a vast portion of our knowledge and activity is, for us, best communicated and understood in our natural language.... One could say that natural language was our first great original artifact and, since, as we increasingly realize, languages are machines, so natural language, with our brains to run it, was our primal invention of the universal computer. One could say this except for the sneaking suspicion that language isn't something we invented but something we became, not something we constructed but something in which we created, and recreated, ourselves. (Leiber, 1991, p. 8)Historical dictionary of quotations in cognitive science > Language
-
9 machinery
машинное оборудование
термин " машинное оборудование" означает:
- сборочную единицу, состоящую из соединенных частей или компонентов, по крайней мере, одна из которых находится в движении, имеет соответствующие приводы, схему управления, цепь питания, и т.д., соединенные вместе с целью специального применения, в частности, для производства, обработки, перемещения или упаковки материала;
- группу машин, которые для достижения той же цели организованы и управляется таким образом, что они функционируют как единое целое;
- взаимозаменяемое оборудование, модифицирующее функции машины, которое отдельно поставляется на рынок и предназначено для установки на машине или на серии различных машин или на приводном устройстве самим оператором, при условии, что данное оборудование не является запасной частью или инструментом.
[Директива 98/37/ЕЭС по машинному оборудованию]EN
machinery
‘machinery’ means:
— an assembly of linked parts or components, at least one of which moves, with the appropriate
actuators, control and power circuits, etc., joined together for a specific application, in particular
for the processing, treatment, moving or packaging of a material,
— an assembly of machines which, in order to achieve the same end, are arranged and controlled so that they function as an integral whole,
— interchangeable equipment modifying the function of a machine, which is placed on the market for the purpose of being assembled with a machine or a series of different machines or with a tractor by the operator himself in so far as this equipment is not a spare part or a tool
[DIRECTIVE 98/37/EC OF THE EUROPEAN PARLIAMENT AND OF THE COUNCIL]Параллельные тексты EN-RU
3. The following are excluded from the scope of this Directive:
3. Из области применения данной Директивы исключаются:
— machinery whose only power source is directly applied manual effort, unless it is a machine used for lifting or lowering loads,
- машинное оборудование, для которых источником энергии является исключительно непосредственное применение ручной силы, за исключением механизмов для подъема и опускания грузов;
— machinery for medical use used in direct contact with patients,
- медицинские приборы;
— special equipment for use in fairgrounds and/or amusement parks,
- специальное оборудование для использования в аттракционах и/или парках для развлечений;
— steam boilers, tanks and pressure vessels,
- паровые котлы, резервуары и сосуды под давлением;
— machinery specially designed or put into service for nuclear purposes which, in the event of failure, may result in an emission of radioactivity,
- машинное оборудование, специально сконструированное или используемое в атомной отрасли, которые в случае аварии могут привести к выделению радиоактивных веществ;
— radioactive sources forming part of a machine,
- радиоактивные источники, составляющие часть машин;
— firearms,
- стрелковое оружие;
— storage tanks and pipelines for petrol, diesel fuel, inflammable liquids and dangerous substances,
- емкости для хранения или трубопроводы для бензина, дизельного топлива, огнеопасных жидкостей и опасных веществ;
— means of transport, i.e. vehicles and their trailers intended solely for transporting passengers by air or on road, rail or water networks, as well as means of transport in so far as such means are designed for transporting goods by air, on public road or rail networks or on water. Vehicles used in the mineral extraction industry shall not be excluded,
- транспортные средства, т.е. средства перевозки и их прицепы, предназначенные исключительно для перевозки пассажиров по воздуху, автодороге, железной дороге, или водными путями, а также транспортные средства, сконструированные для транспортировки грузов по воздуху, по общедоступным дорогам, железным дорогам или водным путям. Средства транспортировки, используемые в горнодобывающей промышленности, не исключаются из области применения настоящей Директивы;
— seagoing vessels and mobile offshore units together with equipment on board such vessels or units,
- морские суда и мобильные береговые агрегаты вместе с оборудованием на борту, такие как танки или установки;
— cableways, including funicular railways, for the public or private transportation of persons,
- канатные дороги, включая фуникулерные железные дороги для общественного или частного пользования, предназначенные для транспортировки людей;
— agricultural and forestry tractors, as defined in Article 1(1) of Directive 74/150/EEC (1),
(1) Council Directive 74/150/EEC of 4 March 1974 on the approximation of the laws of the Member States relating to the type-approval of wheeled agricultural or forestry tractors (OJ L 84, 28.3.1974, p. 10). Directive as last amended by Decision 95/1/EC, Euratom, ECSC (OJ L 1.1.1995, p. 1).-сельскохозяйственные и лесные тракторы, подпадающие под определение статьи 1 (1) Директивы Совета 74/150/ЕЭС(1);
(1) Директива Совета 74/150/ЕЭС от 4 марта 1974 г. по сближению законодательных актов Государств-членов, относящихся к одобрению типов колесных сельскохозяйственных или лесных тракторов (Официальный журнал Европейских сообществ № L 84, 28.3.1974 г., стр.10). Директива, измененная последний раз Решением 95/1/ЕЭС, Евроатом, ECSC (Официальный журнал Европейских сообществ № L 1/1/1995 г., стр 1)— machines specially designed and constructed for military or police purposes,
- машины, специально сконструированные и созданные для военных и полицейских целей;
— lifts which permanently serve specific levels of buildings and constructions, having a car moving between guides which are rigid and inclined at an angle of more than 15 degrees to the horizontal and designed for the transport of:
(i) persons;
(ii) persons and goods;
(iii) goods alone if the car is accessible, that is to say, a person may enter it without difficulty, and fitted with controls situated inside the car or within reach of a person inside,- лифты и подъемные устройства, постоянно обслуживающие определенные уровни зданий и конструкций, имеющие транспортную тележку, движущуюся между жесткими направляющими, которые имеют угол наклона более 15 градусов к горизонтальной поверхности и сконструированы для транспортировки:
(i) людей;
(ii) людей и имущества;
(iii) только имущества, в том случае, если кабина лифта открыта, т.е. человек может легко войти в такое транспортное средство и манипулировать средствами управления, находящимися внутри кабины или в пределах досягаемости для человека;— means of transport of persons using rack and pinion rail mounted vehicles,
- транспортные средства для перевозки людей, с использованием зубчатых или реечных рельс, по которым перемещается транспортные средства;
— mine winding gear,
- шахтные канатные подъемные устройства;
— theatre elevators,
- театральные подъемники;
— construction site hoists intended for lifting persons or persons and goods.
- строительные подъемники, предназначенные для подъема людей или людей и грузов.
4. Where, for machinery or safety components, the risks referred to in this Directive are wholly or partly covered by specific Community Directives, this Directive shall not apply, or shall cease to apply, in the case of such machinery or safety components and of such risks on the implementation of these specific Directives.
4. Когда для машинного оборудования и компонентов безопасности риски, определенные в настоящей Директиве, полностью или частично покрываются специальными Директивами Сообщества, настоящая Директива не применяется или прекращает свое действие, такое машинное оборудование и компоненты безопасности и такие риски подпадают под действие этих специальных Директив.
5. Where, for machinery, the risks are mainly of electrical origin, such machinery shall be covered exclusively by Directive 73/23/EEC (2).
(2) Council Directive 73/23/EEC of 19 February 1973 on the harmonisation of the laws of Member States relating to electrical equipment designed for use within certain voltage limits (OJ L 77, 26.3.1973, p. 29). Directive as last amended by Directive 93/68/EEC (OJ L 220, 30.8.1993, p. 1).5. Когда риски применения машинного оборудования связаны с электрическими источниками, то такое оборудование охватываются исключительно Директивой 73/23/ЕЭС(2).
(2) Директива Совета 73/23/ЕЭС/ от 19 февраля 1973 года о гармонизации законов Государств-Участников в отношении электрооборудования, предназначенного для использования в условиях определенных пределов напряжения (Официальный журнал Европейских сообществ № L 77, 26.03.1973, стр. 29). Директива с последней поправкой Директивой 93/68/ЕЭС (Официальный журнал Европейских сообществ № L 220, 30.08.1993, стр.1).Article 2
1. Member States shall take all appropriate measures to ensure that machinery or safety components covered by this Directive may be placed on the market and put into service only if they do not endanger the health or safety of persons and, where appropriate, domestic animals or property, when properly installed and maintained and used for their intended purpose.Статья 2
1. Государства - члены должны предпринимать все необходимые меры для обеспечения того, чтобы машинное оборудование или компоненты безопасности, попадающие под действие настоящей Директивы, поставлялись на рынок и вводились в эксплуатацию, только если они не составляют угрозу для здоровья и безопасности людей и домашних животных, или имуществу при условии надлежащей установки и обслуживания, а также использования по прямому назначению.2. This Directive shall not affect Member States’ entitlement to lay down, in due observance of the Treaty, such requirements as they may deem necessary to ensure that persons and in particular workers are protected when using the machinery or safety components in question, provided that this does not mean that the machinery or safety components are modified in a way not specified in the Directive.
2. Настоящая Директива не ограничивает права Государств - членов устанавливать при должном соблюдении Договора такие требования, которые они посчитают необходимыми для обеспечения защиты людей, особенно работников, при использовании машинного оборудования или компонентов безопасности, при условии, что модификация такого машинного оборудования и компонентов безопасности была произведена в соответствии с положениями настоящей Директивы.
3. At trade fairs, exhibitions, demonstrations, etc., Member States shall not prevent the showing of machinery or safety components which do not conform to the provisions of this Directive, provided that a visible sign clearly indicates that such machinery or safety components do not conform and that they are not for sale until they have been brought into conformity by the manufacturer or his authorised representative established in the Community. During demonstrations, adequate safety measures shall be taken to ensure the protection of persons.
3. На торговых ярмарках, выставках, демонстрациях и т.п. Государства - члены не должны препятствовать демонстрации машинного оборудования или компонентов безопасности, которые не соответствуют положениям настоящей Директивы, при условии, что видимый знак четко указывает, что такое машинное оборудование или компоненты безопасности не соответствуют данной Директиве, и что они не предназначаются для продажи до тех пор, пока изготовитель или его уполномоченный представитель в Сообществе не приведет их в полное соответствие с Директивой. Во время демонстраций должны приниматься адекватные меры для обеспечения безопасности граждан.
Article 3
Machinery and safety components covered by this Directive shall satisfy the essential health and safety requirements set out in Annex I.Статья 3
Машинное оборудование, а также компоненты безопасности, относящиеся к области действия настоящей Директивы, должны полностью удовлетворять основным требованиям по обеспечению здоровья и безопасности, изложенным в Приложении 1.Article 4
1. Member States shall not prohibit, restrict or impede the placing on the market and putting into service in their territory of machinery and safety components which comply with this Directive.Статья 4
1. Государства - члены не должны запрещать, ограничивать или препятствовать поставке на рынок машинного оборудования, а также компонентов безопасности, которые соответствуют
требованиям настоящей Директивы.2. Member States shall not prohibit, restrict or impede the placing on the market of machinery where the manufacturer or his authorised representative established in the Community declares in accordance with point B of Annex II that it is intended to be incorporated into machinery or assembled with other machinery to constitute machinery covered by this Directive, except where it can function independently.
‘Interchangeable equipment’, as referred to in the third indent of Article 1(2)(a), must in all cases bear the CE marking and be accompanied by the EC declaration of conformity referred to in Annex II, point A.2. Государства - члены не должны запрещать, ограничивать или препятствовать поставке на рынок машинного оборудования, если изготовитель или его уполномоченный представитель в Сообществе заявляет в соответствии с Приложением II B, что они предназначены для включения в машинное оборудование или компоноваться с другим оборудованием, так, что в соединении они составят машинное оборудование, отвечающее требованиям настоящей Директивы, за исключением тех случаев, когда они могут функционировать независимо.
"Взаимозаменяемое оборудование" в смысле третьего абзаца с черточкой в Статье 1 (2) (a) должно во всех случаях иметь маркировку "СЕ" и сопровождаться декларацией соответствия, определенной в Приложении II, пункте А.3. Member States may not prohibit, restrict or impede the placing on the market of safety components as defined in Article 1(2) where they are accompanied by an EC declaration of conformity by the manufacturer or his authorised representative established in the Community as referred to in Annex II, point C.
3. Государства - члены не имеют права запрещать, ограничивать или препятствовать распространению на рынке компонентов безопасности, определенных Статьей 1 (2), если эти компоненты сопровождаются декларацией соответствия ЕС, заявленной изготовителем или его уполномоченным представителем в Сообществе, как определено в Приложении II, пункте С.
Article 5
1. Member States shall regard the following as conforming to all the provisions of this Directive, including the procedures for checking the conformity provided for in Chapter II:
— machinery bearing the CE marking and accompanied by the EC declaration of conformity referred to in Annex II, point A,
— safety components accompanied by the EC declaration of conformity referred to in Annex II, point C.Статья 5
1. Государства - члены должны считать нижеследующее соответствующим всем положениям настоящей Директивы, включая процедуры проверки соответствия, предусмотренной в Главе II:
- машинное оборудование, имеющее маркировку "СЕ" и сопровождаемое декларацией соответствия ЕС, как указано в Приложении II, пункте A;
- компоненты безопасности, сопровождаемые декларацией соответствия ЕС, как указано в Приложении II, пункте C.
При отсутствии гармонизированных стандартов Государства - члены должны предпринимать любые меры, которые они сочтут необходимыми, для привлечения внимания заинтересованных сторон к существующим национальным техническим стандартам и спецификациям, которые считаются важными или относятся к выполнению основных требований по обеспечению здоровья и безопасности в соответствии с Приложением 1.2. Where a national standard transposing a harmonised standard, the reference for which has been published in the Official Journal of the European Communities, covers one or more of the essential safety requirements, machinery or safety components constructed in accordance with this standard shall be presumed to comply with the relevant essential requirements.
Member States shall publish the references of national standards transposing harmonised standards.2. В тех случаях, когда национальный стандарт, заменяющий гармонизированный стандарт, ссылка на который была опубликована в Официальном журнале Европейских сообществ, покрывает одно или несколько основных требований безопасности, машинное оборудование или компоненты безопасности, сконструированные в соответствии с таким стандартом, должны считаться соответствующими основным требованиям.
Государства - члены должны публиковать ссылки на национальные стандарты, заменяющие гармонизированные стандарты.3. Member States shall ensure that appropriate measures are taken to enable the social partners to have an influence at national level on the process of preparing and monitoring the harmonised standards.
3. Государства - члены должны обеспечивать принятие необходимых мер для того, чтобы их социальные партнеры получали возможность влиять на национальном уровне на процессы подготовки и отслеживания гармонизированных стандартов.
Article 6
1. Where a Member State or the Commission considers that the harmonised standards referred to in Article 5(2) do not entirely satisfy the essential requirements referred to in Article 3, the Commission or the Member State concerned shall bring the matter before the committee set up under Directive 83/189/EEC, giving the reasons therefor. The committee shall deliver an opinion without delay.
Upon receipt of the committee’s opinion, the Commission shall inform the Member States whether or not it is necessary to withdraw those standards from the published information referred to in Article 5(2).Статья 6
1. В случае, если Государство - член или Комиссия считают, что гармонизированные стандарты, рассмотренные в Статье 5 (2), не полностью соответствуют основным требованиям, определенным в Статье 3, Комиссия или заинтересованное Государство - член должны поставить этот вопрос на рассмотрение комитета, созданного в соответствии с Директивой 83/189/ЕЭС, обосновав причины такого обращения. Комитет должен безотлагательно вынести решение.
После получения такого решения комитета Комиссия должна информировать Государства – члены, необходимо или нет отозвать эти стандарты из опубликованной информации, определенной в Статье 5 (2).2. A standing committee shall be set up, consisting of representatives appointed by the Member States and chaired by a representative of the Commission.
The standing committee shall draw up its own rules of procedure.
Any matter relating to the implementation and practical application of this Directive may be brought before the standing committee, in accordance with the following procedure:
The representative of the Commission shall submit to the committee a draft of the measures to be taken. The committee shall deliver its opinion on the draft, within a time limit which the chairman may lay down according to the urgency of the matter, if necessary by taking a vote.
The opinion shall be recorded in the minutes; in addition, each Member State shall have the right to ask to have its position recorded in the minutes.
The Commission shall take the utmost account of the opinion delivered by the committee.
It shall inform the committee of the manner in which its opinion has been taken into account.2. Должен быть создан постоянно действующий комитет, состоящий из представителей, назначенных Государствами – членами, и возглавляемый представителем Комиссии.
Постоянно действующий комитет будет сам устанавливать порядок действий и процедуры.
Любой вопрос, относящийся к выполнению и практическому применению настоящей Директивы, может быть поставлен на рассмотрение постоянно действующего комитета, в соответствии со следующими правилами:
Представитель Комиссии должен представить комитету проект предполагаемых к принятию мер. Комитет должен выразить свое мнение по проекту за время, установленное председателем в соответствии со срочностью вопроса, при необходимости определяемого путем голосования.
Это мнение должно быть зафиксировано в протоколе; кроме того, каждое Государство - член имеет право потребовать отразить свою позицию в протоколе. Комиссия должна максимально учитывать мнение, вынесенное комитетом.
Она должна проинформировать комитет, каким образом было учтено его мнение.Article 7
1. Where a Member State ascertains that:
— machinery bearing the CE marking, or
— safety components accompanied by the EC declaration of conformity, used in accordance with their intended purpose are liable to endanger the safety of persons, and, where appropriate, domestic animals or property, it shall take all appropriate measures to withdraw such machinery or safety components from the market, to prohibit the placing on the market, putting into service or use thereof, or to restrict free movement thereof.
Member States shall immediately inform the Commission of any such measure, indicating the reason for its decision and, in particular, whether non-conformity is due to:
(a) failure to satisfy the essential requirements referred to in Article 3;
(b) incorrect application of the standards referred to in Article 5(2);
(c) shortcomings in the standards themselves referred to in Article 5(2).Статья 7
1. Если Государство - член устанавливает, что:
- машинное оборудование, имеющее маркировку "СЕ", либо
- компоненты безопасности, сопровождаемые декларацией соответствия ЕС, используемые в соответствии с их назначением, могут нести угрозу безопасности людям, и, если это имеет место, домашним животным или собственности, оно должно принять все необходимые меры для изъятия такого машинного оборудования, либо компонентов безопасности с рынка, запретить их поставку на рынок, ввод в эксплуатацию или использование, либо ограничить их свободное обращение.
Государства - члены должны немедленно информировать Комиссию о любых подобных мерах, указать причины такого решения и, в особенности, информировать о том, явилось ли это несоответствие результатом:
a) неспособности удовлетворить основным требованиям, определенным в Статье 3;
b) неправильного применения стандартов, определенных в Статье 5 (п.2);
c) недостатков самих стандартов, определенных в Статье 5 (п. 2).2. The Commission shall enter into consultation with the parties concerned without delay. Where the Commission considers, after this consultation, that the measure is justified, it shall immediately so inform the Member State which took the initiative and the other Member States. Where the Commission considers, after this consultation, that the action is unjustified, it shall immediately so inform the Member State which took the initiative and the manufacturer or his authorised representative established within the Community.
Where the decision referred to in paragraph 1 is based on a shortcoming in the standards, and where the Member State at the origin of the decision maintains its position, the Commission shall immediately inform the committee in order to initiate the procedures referred to in Article 6(1).2. Комиссия должна безотлагательно провести консультацию с заинтересованными сторонами. В случае, если после проведения такой консультации, Комиссия полагает, что такая мера обоснована, она должна немедленно информировать об этом Государство - член, которое выдвинуло эту инициативу, а также остальные Государства - члены. Если Комиссия после проведения такой консультации полагает, что действия не были обоснованными, она немедленно извещает об этом Государство - член, проявившее инициативу, и изготовителя, либо его уполномоченного представителя в Сообществе.
Если решение, указанное в параграфе 1, основано на недостатках в стандартах, и если Государство - член на основании такого решения сохраняет свои позиции, то Комиссия должна немедленно информировать комитет для того, чтобы начать процедуры, описанные в Статье 6 (п. 1).3. Where:
— machinery which does not comply bears the CE marking,
— a safety component which does not comply is accompanied by an EC declaration of conformity,
the competent Member State shall take appropriate action against whom so ever has affixed the marking or drawn up the declaration and shall so inform the Commission and other Member States.3. Если:
- машинное оборудование, не соответствующие требованиям, имеют маркировку "СЕ",
- компоненты безопасности, не соответствующие требованиям, имеют декларацию соответствия ЕС,
компетентное Государство - член должно начать соответствующие действия против любого, кто поставил маркировку, или составил декларацию, и должно проинформировать об этом Комиссию и другие Государства - члены.4. The Commission shall ensure that Member States are kept informed of the progress and outcome of this procedure.
4. Комиссия должна обеспечить, чтобы Государства – члены были постоянно информированы о ходе и результатах данной процедуры.
CHAPTER II
CONFORMITY ASSESSMENT PROCEDURES
Article 8
1. The manufacturer or his authorised representative established in the Community must, in order to certify that machinery and safety components are in conformity with this Directive, draw up for all machinery or safety components manufactured an EC declaration of conformity based on the model given in Annex II, point A or C as appropriate.
In addition, for machinery alone, the manufacturer or his authorised representatives established in the Community must affix to the machine the CE marking.Глава II
Процедуры оценки соответствия
Статья 8
1. Для подтверждения того, что машинное оборудование, а также компоненты безопасности соответствуют положениям настоящей Директивы, изготовитель или его уполномоченный представитель в Сообществе должен составить декларацию ЕС о соответствии на произведенное машинное оборудование и компоненты безопасности по образцу, приведенному в Приложении II, соответственно пунктам A или C.
Корме того, на машинное оборудование изготовитель или его уполномоченный представитель в Сообществе должен нанести маркировку "СЕ" в соответствии со Статьей 10.2. Before placing on the market, the manufacturer, or his authorised representative established in the Community, shall:
(a) if the machinery is not referred to in Annex IV, draw up the file provided for in Annex V;
(b) if the machinery is referred to in Annex IV and its manufacturer does not comply, or only partly complies, with the standards referred to in Article 5(2) or if there are no such standards, submit an example of the machinery for the EC type-examination referred to in Annex VI;
(c) if the machinery is referred to in Annex IV and is manufactured in accordance with the standards referred to in Article 5(2):
— either draw up the file referred to in Annex VI and forward it to a notified body, which will acknowledge receipt of the file as soon as possible and keep it,
— submit the file referred to in Annex VI to the notified body, which will simply verify that the standards referred to in Article 5(2) have been correctly applied and will draw up a certificate of adequacy for the file,
— or submit the example of the machinery for the EC type-examination referred to in Annex VI.2. Перед поставкой на рынок изготовитель или его уполномоченный представитель в Сообществе должен:
(a) в случае, если машинное оборудование не указано в Приложении IV, составить документацию, предусмотренную Приложением V;
(b) если машинное оборудование указано в Приложении IV, и их изготовитель не выполняет, либо выполняет лишь частично требования стандартов, упомянутых в Статье 5 (2), либо, если таких стандартов не существует, то представить образец машинного оборудования для его испытания ЕС, определенного в Приложении VI;
(c) если машинное оборудование указано в Приложении IV и изготовлено в соответствии со стандартами, определенными в Статье 5 (п. 2):
- либо составить документацию, указанную в Приложении VI, и передать ее нотифицированному органу, который подтверждает получение документации в возможно короткие сроки, а также сохраняет ее;
- представить документацию, указанную в Приложении VI, нотифицированному органу, который просто проверит, что стандарты, упомянутые в Статье 5 (2), были применены правильно и составит сертификат соответствия по этой документации;
- либо представить образец машинного оборудования для испытания ЕС типового образца, определенного в Приложении VI.3. Where the first indent of paragraph 2(c) of this Article applies, the provisions of the first sentence of paragraphs 5 and 7 of Annex VI shall also apply.
Where the second indent of paragraph 2(c) of this Article applies, the provisions of paragraphs 5, 6 and 7 of Annex VI shall also apply.3. В тех случаях, когда может быть применен первый абзац параграфа 2 (с) этой Статьи должны также применяться положения первого предложения параграфов 5 и 7 Приложения VI.
В тех случаях, когда может быть применен второй абзац пункта 2 (с), должны также применяться положения параграфов 5, 6 и 7 Приложения VI.4. Where paragraph 2(a) and the first and second indents of paragraph 2(c) apply, the EC declaration of conformity shall solely state conformity with the essential requirements of the Directive.
Where paragraph 2(b) and the third indent of paragraph 2(c) apply, the EC declaration of conformity shall state conformity with the example that underwent EC type-examination.4. В тех случаях, когда применяется параграф 2 (а) и первый и второй абзацы параграфа 2 (c), декларация ЕС о соответствии должна удостоверить соответствие основным требованиям настоящей Директивы.
В случае, когда применяется параграф 2 (b) и третий абзац параграфа 2 (c), декларация ЕС о соответствии должна удостоверить соответствие образцу, прошедшему испытание ЕС типового образца.5. Safety components shall be subject to the certification procedures applicable to machinery pursuant to paragraphs 2, 3 and 4. Furthermore, during EC type-examination, the notified body shall verify the suitability of the safety component for fulfilling the safety functions declared by the manufacturer.
5.Компоненты безопасности должны подвергаться процедурам сертификации, применимым к машинному оборудованию в соответствии с параграфами 2, 3, 4. Более того, во время испытания ЕС типового образца нотифицированный орган должен проверить пригодность компонентов безопасности для выполнения тех функций безопасности, которые заявлены изготовителем.
6. (a) Where the machinery is subject to other Directives concerning other aspects and which also provide for the affixing of the CE marking, the latter shall indicate that the machinery is also presumed to conform to the provisions of those other Directives.
(b) However, where one or more of those Directives allow the manufacturer, during a transitional period, to choose which arrangements to apply, the CE marking shall indicate conformity only to the Directives applied by the manufacturer. In this case, particulars of the Directives applied, as published in the Official Journal of the European Communities, must be given in the documents, notices or instructions required by the directives and accompanying such machinery.6. (a) В тех случаях, когда машинное оборудование подпадает под действие Директив по другим аспектам, которые также предусматривают нанесение маркировки "СЕ", последняя указывает, что такое машинное оборудование соответствуют положениям этих прочих директив.
(b) Тем не менее, когда одна или несколько таких Директив позволяют изготовителям в течение переходного периода выбирать, какие из положений применить, маркировка "СЕ" будет указывать на соответствие только тем Директивам, которые применялись изготовителем. В этом случае подробная информация о примененных Директивах, опубликованных в Официальном журнале Европейских сообществ, должен приводиться в документах, аннотациях или инструкциях, требуемых в соответствии с Директивами, и сопровождать такое машинное оборудование.7. Where neither the manufacturer nor his authorised representative established in the Community fulfils the obligations of paragraphs 1 to 6, these obligations shall fall to any person placing the machinery or safety component on the market in the Community. The same obligations shall apply to any person assembling machinery or parts thereof or safety components of various origins or constructing machinery or safety components for his own use.
7. Если ни изготовитель, ни его уполномоченный представитель в Сообществе не выполнят своих обязательств по предыдущим параграфам, то эти обязательства должны быть выполнены любыми лицами, поставляющими машинное оборудование или компоненты безопасности на рынок Сообщества. Такие же обязательства возлагаются на любые лица, осуществляющие сборку машинного оборудования, либо его частей или компонентов безопасности различного происхождения, либо создающие машинное оборудование или компоненты безопасности для собственного пользования.
8. The obligations referred to in paragraph 7 shall not apply to persons who assemble with a machine or tractor interchangeable equipment as provided for in Article 1, provided that the parts are compatible and each of the constituent parts of the assembled machine bears the CE marking and is accompanied by the EC declaration of conformity.
8. Обязательства, изложенные в параграфе 7, не применяются к лицам, которые собирают с машиной, механизмом или транспортным средством взаимозаменяемое оборудование, указанное в Статье 1, при условии, что эти части совместимы, и каждая из частей машины в сборе имеет маркировку "СЕ" и Декларацию ЕС о соответствии.
Article 9
1. Member States shall notify the Commission and the other Member States of the approved bodies which they have appointed to carry out the procedures referred to in Article 8 together with the specific tasks which these bodies have been appointed to carry out and the identification numbers assigned to them beforehand by the Commission.
The Commission shall publish in the Official Journal of the European Communities a list of the notified bodies and their identification numbers and the tasks for which they have been notified. The Commission shall ensure that this list is kept up to date.Статья 9
1. Государства - члены должны уведомить Комиссию и другие Государства - члены об утвержденных органах, которые назначаются для выполнения процедур, описанных в Статье 8, также как и для различных особых задач, которые этим органам предназначено выполнять, и об идентификационных номерах, предварительно присвоенных им Комиссией.В Официальном журнале Европейских сообществ Комиссия должна публиковать список таких нотифицированных органов и их идентификационные номера, а также задачи, для решения которых они предназначены. Комиссия должна обеспечить своевременность обновления списка.
2. Member States shall apply the criteria laid down in Annex VII in assessing the bodies to be indicated in such notification. Bodies meeting the assessment criteria laid down in the relevant harmonised standards shall be presumed to fulfil those criteria.
2. Государства - члены должны применять критерии, изложенные в Приложении VII, для определения органов, которые будут указаны в таких назначениях. Органы, удовлетворяющие критериям, изложенным в соответствующих гармонизированных стандартах, считаются соответствующими критериям.
3. A Member State which has approved a body must withdraw its notification if it finds that the body no longer meets the criteria referred to in Annex VII. It shall immediately inform the Commission and the other Member States accordingly.
3. Государство - член, утвердившее такой орган, должно отменить его назначение, если оно обнаружит, что он больше не соответствует критериям, изложенным в Приложении VII. Государство - член должно немедленно известить об этом Комиссию и другие Государства - члены.
CHAPTER III
CE MARKING
Article 10
1. The CE conformity marking shall consist of the initials ‘CE’. The form of the marking to be used is shown in Annex III.ГЛАВА III
МАРКИРОВКА "СЕ"
Статья 10
1. Маркировка "СЕ" состоит из заглавных букв "СЕ". Форма маркировки, которая будет использоваться, указана в Приложении III.2. The CE marking shall be affixed to machinery distinctly and visibly in accordance with point 1.7.3 of Annex I.
2. Маркировка "СЕ" должна наноситься на машинное оборудование четко, на видном месте в соответствии с пунктом 1.7.3. Приложения I.
3. The affixing of markings on the machinery which are likely to deceive third parties as to the meaning and form of the CE marking shall be prohibited. Any other marking may be affixed to the machinery provided that the visibility and legibility of the CE marking is not thereby reduced.
3. Нанесение маркировок на машинное оборудование таким образом, что это может ввести в заблуждение относительно значения и формы маркировки "СЕ", запрещено. Любые другие маркировки могут быть нанесены на машинное оборудование таким образом, чтобы не мешать видимости и различимости маркировки "СЕ".
4. Without prejudice to Article 7:
(a) where a Member State establishes that the CE marking has been affixed unduly, the manufacturer or his authorised representative established within the Community shall be obliged to make the product conform as regards the provisions concerning the CE marking and to end the infringement under the conditions imposed by the Member State;
(b) where non-conformity continues, the Member State must take all appropriate measures to restrict or prohibit the placing on the market of the product in question or to ensure that it is withdrawn from the market in accordance with the procedure laid down in Article 7.4. Без ограничения применения Статьи 7:
(a) если Государство - член устанавливает, что маркировка "СЕ" была нанесена неправильно, изготовитель или его уполномоченный представитель в Сообществе будет обязан привести продукцию в соответствии с положениями, касающимися маркировки "СЕ" и положить конец нарушениям на условиях, установленных Государством - членом;
(b) если такое несоответствие будет продолжаться, то Государство - член должно принять все соответствующие меры для ограничения или запрещения поставки на рынок такой продукции, либо обеспечить изъятие ее с рынка в соответствии с процедурами, изложенными в Статье 7.CHAPTER IV
FINAL PROVISIONS
Article 11
Any decision taken pursuant to this Directive which restricts the placing on the market and putting into service of machinery or a safety component shall state the exact grounds on which it is based. Such a decision shall be notified as soon as possible to the party concerned, who shall at the same time be informed of the legal remedies available to him under the laws in force in the Member State concerned and of the time limits to which such remedies are subject.ГЛАВА IV
ЗАКЛЮЧИТЕЛЬНЫЕ ПОЛОЖЕНИЯ
Статья 11
Любое решение, принятое в исполнение настоящей Директивы, ограничивающее поставку на рынок и ввод в эксплуатацию машинного оборудования или компонентов безопасности, должно указывать точные причины, на которых оно основано. Такое решение должно быть по возможности быстро доведено до сведения заинтересованных сторон, их также следует проинформировать о законных мерах, которые могут быть предприняты по действующему законодательству в соответствующем Государстве - члене и о сроках, в которые данные меры применяются.Article 12
The Commission will take the necessary steps to have information on all the relevant decisions relating to the management of this Directive made available.Статья 12
Комиссия предпримет все необходимые шаги для получения информации по всем соответствующим решениям, касающимся применения и распространения настоящей Директивы.Article 13
1. Member States shall communicate to the Commission the texts of the provisions of national law which they adopt in the field governed by this Directive.
2. The Commission shall, before 1 January 1994, examine the progress made in the standardisation work relating to this Directive and propose any appropriate measures.Статья 13
1. Государства - члены должны передать Комиссии тексты положений национальных законодательных актов, принимаемых в сфере, определяемой настоящей Директивой.
2. Комиссия должна до 1 января 1994 г. изучить развитие работ по стандартизации, относящиеся к области действия настоящей Директивы и предложить любые целесообразные меры.Тематики
EN
машины
оборудование
—
[Я.Н.Лугинский, М.С.Фези-Жилинская, Ю.С.Кабиров. Англо-русский словарь по электротехнике и электроэнергетике, Москва]
машины
Машина представляет собой аппарат, использующий или применяющий механическую энергию, состоящий из нескольких частей — каждая со своими определенными функциями, которые вместе выполняют некоторые виды работ. Для целей анализа это понятие включает отдельные машины или наборы машин. См. Машины и оборудование (МСО)
[ http://slovar-lopatnikov.ru/]Тематики
- экономика
- электротехника, основные понятия
Синонимы
EN
машины и оборудование
—
[ http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]
машины и оборудование
МСО
Часть основных фондов компании (предприятия), которая включает устройства, преобразующие энергию, материалы и информацию. В аналитической и оценочной практике в общее понятие М. и о. включаются отдельно оцениваемые установки, машины, оборудование и транспортные средства, подразделяемые на виды, а каждый вид – на марки (последним термином для краткости можно обозначать разные модели и модификации машины). Разные марки машин одного вида используются для одних и тех же целей: они способны производить одну и ту же продукцию, выполнять одни и те же работы или оказывать одни и те же услуги ( в противном случае их надо относить в другому виду машин), а следовательно, «взаимозаменяемы» и являются товарами, конкурирующими между собой на рынке Рынок машин каждого вида делится на первичный (новые М..) и вторичный (бывшие в эксплуатации), для которых применяются разные оценочные приемы и инструменты.. М.и о. являются главным объектом инвестирования при разработке и реализации инвестиционного проекта, и, соответственно, одним из основных элементов оценки инвестиционных проектов. Важно, что в отличие от ценных бумаг, акций, М.и о. являются объектами реальных инвестиций, а не финансовых инвестиций.
[ http://slovar-lopatnikov.ru/]EN
machinery
A group of parts or machines arranged to perform a useful function. (Source: MGH)
[http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]Тематики
Синонимы
EN
DE
FR
механизм
Совокупность подвижно соединённых звеньев, совершающих под действием приложенных сил заранее определённые целесообразные движения
[Терминологический словарь по строительству на 12 языках (ВНИИИС Госстроя СССР)]
машины, механизмы
Совокупность связанных между собой частей и устройств, как минимум одно из которых движется, имеет соответствующий привод, органы управления и энергетические узлы, соединенные вместе для определенного применения, например для обработки, переработки, производства, транспортирования или упаковки материалов.
Термины «машина» и «механизм» также распространяются на совокупность машин, которые размещаются и управляются таким образом, чтобы функционировать как единое целое.
Примечание
В приложении А приведено общее схематическое изображение машины.
[ ГОСТ Р ИСО 12100-1:2007]EN
DE
FR
оборудование
оборудование
Совокупность связанных между собой частей или устройств, из которых по крайней мере одно движется, а также элементы привода, управления и энергетические узлы, которые предназначены для определенного применения, в частности для обработки, производства, перемещения или упаковки материала. К термину «оборудование» относят также машину и совокупность машин, которые так устроены и управляемы, что они функционируют как единое целое для достижения одной и той же цели.
[ГОСТ ЕН 1070-2003]
-
[IEV number 151-11-25 ]
оборудование
Оснащение, материалы, приспособления, устройства, механизмы, приборы, инструменты и другие принадлежности, используемые в качестве частей электрической установки или в соединении с ней.
[ ГОСТ Р МЭК 60204-1-2007]EN
equipment
single apparatus or set of devices or apparatuses, or the set of main devices of an installation, or all devices necessary to perform a specific task
NOTE – Examples of equipment are a power transformer, the equipment of a substation, measuring equipment.
[IEV number 151-11-25 ]
equipment
material, fittings, devices, components, appliances, fixtures, apparatus, and the like used as part of, or in connection with, the electrical equipment of machines
[IEC 60204-1-2006]FR
équipement, m
matériel, m
appareil unique ou ensemble de dispositifs ou appareils, ou ensemble des dispositifs principaux d'une installation, ou ensemble des dispositifs nécessaires à l'accomplissement d'une tâche particulière
NOTE – Des exemples d’équipement ou de matériel sont un transformateur de puissance, l’équipement d’une sous-station, un équipement de mesure.
[IEV number 151-11-25]Тематики
EN
- accessories
- apparatus
- appliance
- assets
- environment
- equipment
- facility
- fitment
- fixing
- gear
- H/W
- hardware
- hardware environment
- HW
- installation
- instrument
- instrumentation
- layout
- machinery
- outfit
- paraphernalia
- plant
- plant stock
- product
- provisions
- rig
- rigging
- set-up
- stock-in-trade
- tackle
- technical equipment
- technique
DE
FR
- machine
- matériel, m
- équipement, m
организационный аппарат
—
[ http://www.iks-media.ru/glossary/index.html?glossid=2400324]Тематики
- электросвязь, основные понятия
EN
3.26 машины (machinery): Устройство, состоящее из соединенных между собой частей или компонентов, по крайней мере, один из которых движется, с соответствующими исполнительными механизмами, силовыми цепями и цепями управления и т.д., объединенных вместе в целях конкретного применения, в частности, для обработки, переработки, перемещения или упаковки материала (материал означает эквивалент вещества или изделия).
Термин «машины» одновременно означает совокупность машин и механизмов, которые для достижения одной и той же цели установлены и управляются таким образом, что они функционируют как единое целое.
Англо-русский словарь нормативно-технической терминологии > machinery
-
10 Bell, Alexander Graham
SUBJECT AREA: Telecommunications[br]b. 3 March 1847 Edinburgh, Scotlandd. 3 August 1922 Beinn Bhreagh, Baddeck, Cape Breton Island, Nova Scotia, Canada[br]Scottish/American inventor of the telephone.[br]Bell's grandfather was a professor of elocution in London and his father an authority on the physiology of the voice and on elocution; Bell was to follow in their footsteps. He was educated in Edinburgh, leaving school at 13. In 1863 he went to Elgin, Morayshire, as a pupil teacher in elocution, with a year's break to study at Edinburgh University; it was in 1865, while still in Elgin, that he first conceived the idea of the electrical transmission of speech. He went as a master to Somersetshire College, Bath (now in Avon), and in 1867 he moved to London to assist his father, who had taken up the grandfather's work in elocution. In the same year, he matriculated at London University, studying anatomy and physiology, and also began teaching the deaf. He continued to pursue the studies that were to lead to the invention of the telephone. At this time he read Helmholtz's The Sensations of Tone, an important work on the theory of sound that was to exert a considerable influence on him.In 1870 he accompanied his parents when they emigrated to Canada. His work for the deaf gained fame in both Canada and the USA, and in 1873 he was apponted professor of vocal physiology and the mechanics of speech at Boston University, Massachusetts. There, he continued to work on his theory that sound wave vibrations could be converted into a fluctuating electric current, be sent along a wire and then be converted back into sound waves by means of a receiver. He approached the problem from the background of the theory of sound and voice production rather than from that of electrical science, and by 1875 he had succeeded in constructing a rough model. On 7 March 1876 Bell spoke the famous command to his assistant, "Mr Watson, come here, I want you": this was the first time a human voice had been transmitted along a wire. Only three days earlier, Bell's first patent for the telephone had been granted. Almost simultaneously, but quite independently, Elisha Gray had achieved a similar result. After a period of litigation, the US Supreme Court awarded Bell priority, although Gray's device was technically superior.In 1877, three years after becoming a naturalized US citizen, Bell married the deaf daughter of his first backer. In August of that year, they travelled to Europe to combine a honeymoon with promotion of the telephone. Bell's patent was possibly the most valuable ever issued, for it gave birth to what later became the world's largest private service organization, the Bell Telephone Company.Bell had other scientific and technological interests: he made improvements in telegraphy and in Edison's gramophone, and he also developed a keen interest in aeronautics, working on Curtiss's flying machine. Bell founded the celebrated periodical Science.[br]Principal Honours and DistinctionsLegion of Honour; Hughes Medal, Royal Society, 1913.Further ReadingObituary, 7 August 1922, The Times. Dictionary of American Biography.R.Burlingame, 1964, Out of Silence into Sound, London: Macmillan.LRD -
11 Bouch, Sir Thomas
SUBJECT AREA: Civil engineering[br]b. 22 February 1822 Thursby, Cumberland, Englandd. 1880 Moffat[br]English designer of the ill-fated Tay railway bridge.[br]The third son of a merchant sea captain, he was at first educated in the village school. At the age of 17 he was working under a Mr Larmer, a civil engineer, constructing the Lancaster and Carlisle railway. He later moved to be a resident engineer on the Stockton \& Darlington Railway, and from 1849 was Engineer and Manager of the Edinburgh \& Northern Railway. In this last position he became aware of the great inconvenience caused to traffic by the broad estuaries of the Tay and the Forth on the eastern side of Scotland. The railway later became the Edinburgh, Perth \& Dundee, and was then absorbed into the North British in 1854 when Bouch produced his first plans for a bridge across the Tay at an estimated cost of £200,000. A bill was passed for the building of the bridge in 1870. Prior to this, Bouch had built many bridges up to the Redheugh Viaduct, at Newcastle upon Tyne, which had two spans of 240 ft (73 m) and two of 260 ft (79 m). He had also set up in business on his own. He is said to have designed nearly 300 miles (480 km) of railway in the north, as well as a "floating railway" of steam ferries to carry trains across the Forth and the Tay. The Tay bridge, however, was his favourite project; he had hawked it for some twenty years before getting the go-ahead, and the foundation stone of the bridge was laid on 22 July 1871. The total length of the bridge was nearly two miles (3.2 km), while the shore-to-shore distance over the river was just over one mile (1.6 km). It consisted of eighty-five spans, thirteen of which, i.e. "the high girders", were some 245 ft (75 m) long and 100 ft (30 m) above water level to allow for shipping access to Perth, and was a structure of lattice girders on brick and masonry piers topped with ironwork. The first crossing of the bridge was made on 26 September 1877, and the official opening was on 31 May 1878. On Sunday 28 December 1879, at about 7.20 pm, in a wind of probably 90 mph (145 km/h), the thirteen "high girders" were blown into the river below, drowning the seventy-five passengers and crew aboard the 5.20 train from Burntisland. A Court of Enquiry was held and revealed design faults in that the effect of wind pressure had not been adequately taken into account, faults in manufacture in the plugging of flaws in the castings, and inadequate inspection and maintenance; all of these faults were attributed to Bouch, who had been knighted for the building of the bridge. He died at his house in Moffat four months after the enquiry.[br]Principal Honours and DistinctionsKnighted. Cross of St George.Further ReadingJohn Prebble, 1956, The High Girders.IMcN -
12 Leschot, Georges Auguste
[br]b. 24 March 1800 Geneva, Switzerlandd. 4 February 1884 Geneva, Switzerland[br]Swiss clockmaker, inventor of diamond drilling.[br]By about 1843, Leschot, who was renowned for designing machines to produce parts of clocks on an industrialized scale, had gathered that the fine, deep lines he found on an Egyptian red porphyry plate must have been cut by diamonds. He thus resurrected a technology that had been largely forgotten over the centuries, when in 1862 his son, who was engaged in constructing a railway line in Italy, was confronted with the problems of tunnelling through hard rock. In Paris he developed a drilling machine consisting of a casing that rotated in a similar way to the American rope drilling method. The crown of the machine was mounted with eight black diamonds, and inside the casing a stream of water circulated continuously to flush out the mud.He took out his first patent in France in 1862, and followed it with further ones in many European countries and in America. He continued to concentrate on his watchmaker's profession and left the rights to his patents to his son. It was Leschot's ingenious idea of utilizing diamonds for drilling hard rock that was later applied in different mining processes. It influenced a series of further developments in many countries, including those of Alfred Brandt and Major Beaumont in England. In particular, the fact that the hollow casing produced a complete core was of importance for the increasing amount of petroleum prospecting in Pennsylvania after Edwin Laurentine Drake's find of 1859, where M.C.Bullock sunk the first deep well (200 m) in the world by diamond drilling in 1870. The efforts of Per Anton Crælius in Sweden made diamond drilling a success worldwide.[br]Further ReadingD.Colladon, 1884, "Notice sur les inventions mécaniques de M.G.Leschot, horloger", Archives des Sciences Physiques et Naturelles 3, XI (1):297–313 (discusses the influences of Leschot's invention on other engineers in Europe).D.Hoffmann, 1962, "Die Erfindung der Diamantbohrmaschine vor 100 Jahren", Der Anschnitt 14(1):15–19 (contains detailed biographical outlines).WKBiographical history of technology > Leschot, Georges Auguste
-
13 Rowland, Thomas Fitch
SUBJECT AREA: Mining and extraction technology[br]b. 15 March 1831 New Haven, Connecticut, USAd. 13 December 1907 New York City, USA[br]American engineer and manufacturer, inventor of off-shore drilling.[br]The son of a grist miller, Rowland worked in various jobs until 1859 when he established his own business for the construction of wooden and iron steamships and for structural iron works, in Greenpoint, Long Island, New York. In 1860 he founded the Continental Works and during the American Civil War he started manufacturing gun carriages and mortar beds. He fitted out many vessels for the navy, and as a contractor for John Ericsson he built heavily armoured war vessels.He continued shipbuilding, but later diversified his business. He devoted great attention to the design of gas-works, constructing innovative storage facilities all over the United States, and he was concerned with the improvement of welding iron and steel plates and other processes in the steel industry. In the late 1860s he also began the manufacture of steam-engines and boilers for use in the new but expanding oil industry. In 1869 he took out a patent for a fixed platform for drilling for oil off-shore up to a depth of 15 m (49 ft). With this idea, just ten years after Edwin Drake's success in on-shore oil drilling in Titusville, Pennsylvania, Rowland pioneered the technology of off-shore drilling for petroleum in which the United States later became the leading nation.[br]Principal Honours and DistinctionsAmerican Society of Civil Engineers: Director 1871–3, Vice-President 1886–7, Honorary Member 1899.Further Reading"Thomas Fitch Rowland", Dictionary of American Biography.1909, "Memoir", Transactions of the American Society of Civil Engineers 62:547–9.WK -
14 Smith, Sir Francis Pettit
SUBJECT AREA: Ports and shipping[br]b. 9 February 1808 Copperhurst Farm, near Hythe, Kent, Englandd. 12 February 1874 South Kensington, London, England[br]English inventor of the screw propeller.[br]Smith was the only son of Charles Smith, Postmaster at Hythe, and his wife Sarah (née Pettit). After education at a private school in Ashford, Kent, he took to farming, first on Romney Marsh, then at Hendon, Middlesex. As a boy, he showed much skill in the construction of model boats, especially in devising their means of propulsion. He maintained this interest into adult life and in 1835 he made a model propelled by a screw driven by a spring. This worked so well that he became convinced that the screw propeller offered a better method of propulsion than the paddle wheels that were then in general use. This notion so fired his enthusiasm that he virtually gave up farming to devote himself to perfecting his invention. The following year he produced a better model, which he successfully demonstrated to friends on his farm at Hendon and afterwards to the public at the Adelaide Gallery in London. On 31 May 1836 Smith was granted a patent for the propulsion of vessels by means of a screw.The idea of screw propulsion was not new, however, for it had been mooted as early as the seventeenth century and since then several proposals had been advanced, but without successful practical application. Indeed, simultaneously but quite independently of Smith, the Swedish engineer John Ericsson had invented the ship's propeller and obtained a patent on 13 July 1836, just weeks after Smith. But Smith was completely unaware of this and pursued his own device in the belief that he was the sole inventor.With some financial and technical backing, Smith was able to construct a 10 ton boat driven by a screw and powered by a steam engine of about 6 hp (4.5 kW). After showing it off to the public, Smith tried it out at sea, from Ramsgate round to Dover and Hythe, returning in stormy weather. The screw performed well in both calm and rough water. The engineering world seemed opposed to the new method of propulsion, but the Admiralty gave cautious encouragement in 1839 by ordering that the 237 ton Archimedes be equipped with a screw. It showed itself superior to the Vulcan, one of the fastest paddle-driven ships in the Navy. The ship was put through its paces in several ports, including Bristol, where Isambard Kingdom Brunel was constructing his Great Britain, the first large iron ocean-going vessel. Brunel was so impressed that he adapted his ship for screw propulsion.Meanwhile, in spite of favourable reports, the Admiralty were dragging their feet and ordered further trials, fitting Smith's four-bladed propeller to the Rattler, then under construction and completed in 1844. The trials were a complete success and propelled their lordships of the Admiralty to a decision to equip twenty ships with screw propulsion, under Smith's supervision.At last the superiority of screw propulsion was generally accepted and virtually universally adopted. Yet Smith gained little financial reward for his invention and in 1850 he retired to Guernsey to resume his farming life. In 1860 financial pressures compelled him to accept the position of Curator of Patent Models at the Patent Museum in South Kensington, London, a post he held until his death. Belated recognition by the Government, then headed by Lord Palmerston, came in 1855 with the grant of an annual pension of £200. Two years later Smith received unofficial recognition when he was presented with a national testimonial, consisting of a service of plate and nearly £3,000 in cash subscribed largely by the shipbuilding and engineering community. Finally, in 1871 Smith was honoured with a knighthood.[br]Principal Honours and DistinctionsKnighted 1871.Further ReadingObituary, 1874, Illustrated London News (7 February).1856, On the Invention and Progress of the Screw Propeller, London (provides biographical details).Smith and his invention are referred to in papers in Transactions of the Newcomen Society, 14 (1934): 9; 19 (1939): 145–8, 155–7, 161–4, 237–9.LRDBiographical history of technology > Smith, Sir Francis Pettit
-
15 Tesla, Nikola
SUBJECT AREA: Electricity[br]b. 9 July 1856 Smiljan, Croatiad. 7 January 1943 New York, USA[br]Serbian (naturalized American) engineer and inventor of polyphase electrical power systems.[br]While at the technical institute in Graz, Austria, Tesla's attention was drawn to the desirability of constructing a motor without a commutator. He considered the sparking between the commutator and brushes of the Gramme machine when run as a motor a serious defect. In 1881 he went to Budapest to work on the telegraph system and while there conceived the principle of the rotating magnetic field, upon which all polyphase induction motors are based. In 1882 Tesla moved to Paris and joined the Continental Edison Company. After building a prototype of his motor he emigrated to the United States in 1884, becoming an American citizen in 1889. He left Edison and founded an independent concern, the Tesla Electric Company, to develop his inventions.The importance of Tesla's first patents, granted in 1888 for alternating-current machines, cannot be over-emphasized. They covered a complete polyphase system including an alternator and induction motor. Other patents included the polyphase transformer, synchronous motor and the star connection of three-phase machines. These were to become the basis of the whole of the modern electric power industry. The Westinghouse company purchased the patents and marketed Tesla motors, obtaining in 1893 the contract for the Niagara Falls two-phase alternators driven by 5,000 hp (3,700 kW) water turbines.After a short period with Westinghouse, Tesla resigned to continue his research into high-frequency and high-voltage phenomena using the Tesla coil, an air-cored transformer. He lectured in America and Europe on his high-frequency devices, enjoying a considerable international reputation. The name "tesla" has been given to the SI unit of magnetic-flux density. The induction motor became one of the greatest advances in the industrial application of electricity. A claim for priority of invention of the induction motor was made by protagonists of Galileo Ferraris (1847–1897), whose discovery of rotating magnetic fields produced by alternating currents was made independently of Tesla's. Ferraris demonstrated the phenomenon but neglected its exploitation to produce a practical motor. Tesla himself failed to reap more than a small return on his work and later became more interested in scientific achievement than commercial success, with his patents being infringed on a wide scale.[br]Principal Honours and DistinctionsAmerican Institute of Electrical Engineers Edison Medal 1917. Tesla received doctorates from fourteen universities.Bibliography1 May 1888, American patent no. 381,968 (initial patent for the three-phase induction motor).1956, Nikola Tesla, 1856–1943, Lectures, Patents, Articles, ed. L.I.Anderson, Belgrade (selected works, in English).1977, My Inventions, repub. Zagreb (autobiography).Further ReadingM.Cheney, 1981, Tesla: Man Out of Time, New Jersey (a full biography). C.Mackechnie Jarvis, 1969, in IEE Electronics and Power 15:436–40 (a brief treatment).T.C.Martin, 1894, The Inventions, Researches and Writings of Nikola Tesla, New York (covers his early work on polyphase systems).GW -
16 Vignoles, Charles Blacker
[br]b. 31 May 1793 Woodbrook, Co. Wexford, Irelandd. 17 November 1875 Hythe, Hampshire, England[br]English surveyor and civil engineer, pioneer of railways.[br]Vignoles, who was of Huguenot descent, was orphaned in infancy and brought up in the family of his grandfather, Dr Charles Hutton FRS, Professor of Mathematics at the Royal Military Academy, Woolwich. After service in the Army he travelled to America, arriving in South Carolina in 1817. He was appointed Assistant to the state's Civil Engineer and surveyed much of South Carolina and subsequently Florida. After his return to England in 1823 he established himself as a civil engineer in London, and obtained work from the brothers George and John Rennie.In 1825 the promoters of the Liverpool \& Manchester Railway (L \& MR) lost their application for an Act of Parliament, discharged their engineer George Stephenson and appointed the Rennie brothers in his place. They in turn employed Vignoles to resurvey the railway, taking a route that would minimize objections. With Vignoles's route, the company obtained its Act in 1826 and appointed Vignoles to supervise the start of construction. After Stephenson was reappointed Chief Engineer, however, he and Vignoles proved incompatible, with the result that Vignoles left the L \& MR early in 1827.Nevertheless, Vignoles did not sever all connection with the L \& MR. He supported John Braithwaite and John Ericsson in the construction of the locomotive Novelty and was present when it competed in the Rainhill Trials in 1829. He attended the opening of the L \& MR in 1830 and was appointed Engineer to two railways which connected with it, the St Helens \& Runcorn Gap and the Wigan Branch (later extended to Preston as the North Union); he supervised the construction of these.After the death of the Engineer to the Dublin \& Kingstown Railway, Vignoles supervised construction: the railway, the first in Ireland, was opened in 1834. He was subsequently employed in surveying and constructing many railways in the British Isles and on the European continent; these included the Eastern Counties, the Midland Counties, the Sheffield, Ashton-under-Lyme \& Manchester (which proved for him a financial disaster from which he took many years to recover), and the Waterford \& Limerick. He probably discussed rail of flat-bottom section with R.L. Stevens during the winter of 1830–1 and brought it into use in the UK for the first time in 1836 on the London \& Croydon Railway: subsequently rail of this section became known as "Vignoles rail". He considered that a broader gauge than 4 ft 8½ in. (1.44 m) was desirable for railways, although most of those he built were to this gauge so that they might connect with others. He supported the atmospheric system of propulsion during the 1840s and was instrumental in its early installation on the Dublin \& Kingstown Railway's Dalkey extension. Between 1847 and 1853 he designed and built the noted multi-span suspension bridge at Kiev, Russia, over the River Dnieper, which is more than half a mile (800 m) wide at that point.Between 1857 and 1863 he surveyed and then supervised the construction of the 155- mile (250 km) Tudela \& Bilbao Railway, which crosses the Cantabrian Pyrenees at an altitude of 2,163 ft (659 m) above sea level. Vignoles outlived his most famous contemporaries to become the grand old man of his profession.[br]Principal Honours and DistinctionsFellow of the Royal Astronomical Society 1829. FRS 1855. President, Institution of Civil Engineers 1869–70.Bibliography1830, jointly with John Ericsson, British patent no. 5,995 (a device to increase the capability of steam locomotives on grades, in which rollers gripped a third rail).1823, Observations upon the Floridas, New York: Bliss \& White.1870, Address on His Election as President of the Institution of Civil Engineers.Further ReadingK.H.Vignoles, 1982, Charles Blacker Vignoles: Romantic Engineer, Cambridge: Cambridge University Press (good modern biography by his great-grandson).See also: Samuda, Joseph d'AguilarPJGRBiographical history of technology > Vignoles, Charles Blacker
-
17 Wyatt, John
[br]b. April 1700 Thickbroom, Weeford, near Lichfield, Englandd. 29 November 1766 Birmingham, England[br]English inventor of machines for making files and rolling lead, and co-constructor of a cotton-spinning machine.[br]John Wyatt was the eldest son of John and Jane Wyatt, who lived in the small village of Thickbroom in the parish of Weeford, near Lichfield. John the younger was educated at Lichfield school and then worked as a carpenter at Thickbroom till 1730. In 1732 he was in Birmingham, engaged by a man named Heely, a gunbarrel forger, who became bankrupt in 1734. Wyatt had invented a machine for making files and sought the help of Lewis Paul to manufacture this commercially.The surviving papers of Paul and Wyatt in Birmingham are mostly undated and show a variety of machines with which they were involved. There was a machine for "making lead hard" which had rollers, and "a Gymcrak of some consequence" probably refers to a machine for boring barrels or the file-making machine. Wyatt is said to have been one of the unsuccessful competitors for the erection of London Bridge in 1736. He invented and perfected the compound-lever weighing machine. He had more success with this: after 1744, machines for weighing up to five tons were set up at Birmingham, Chester, Gloucester, Hereford, Lichfield and Liverpool. Road construction, bridge building, hydrostatics, canals, water-powered engines and many other schemes received his attention and it is said that he was employed for a time after 1744 by Matthew Boulton.It is certain that in April 1735 Paul and Wyatt were working on their spinning machine and Wyatt was making a model of it in London in 1736, giving up his work in Birmingham. The first patent, in 1738, was taken out in the name of Lewis Paul. It is impossible to know which of these two invented what. This first patent covers a wide variety of descriptions of the vital roller drafting to draw out the fibres, and it is unknown which system was actually used. Paul's carding patent of 1748 and his second spinning patent of 1758 show that he moved away from the system and principles upon which Arkwright built his success. Wyatt and Paul's spinning machines were sufficiently promising for a mill to be set up in 1741 at the Upper Priory, Birmingham, that was powered by two asses. Wyatt was the person responsible for constructing the machinery. Edward Cave established another at Northampton powered by water while later Daniel Bourn built yet another at Leominster. Many others were interested too. The Birmingham mill did not work for long and seems to have been given up in 1743. Wyatt was imprisoned for debt in The Fleet in 1742, and when released in 1743 he tried for a time to run the Birmingham mill and possibly the Northampton one. The one at Leominster burned down in 1754, while the Northampton mill was advertised for sale in 1756. This last mill may have been used again in conjunction with the 1758 patent. It was Wyatt whom Daniel Bourn contacted about a grant for spindles for his Leominster mill in 1748, but this seems to have been Wyatt's last association with the spinning venture.[br]Further ReadingG.J.French, 1859, The Life and Times of Samuel Crompton, London (French collected many of the Paul and Wyatt papers; these should be read in conjunction with Hills 1970).R.L.Hills, 1970, Power in the Industrial Revolution, Manchester (Hills shows that the rollerdrafting system on this spinning machine worked on the wrong principles). A.P.Wadsworth and J.de L.Mann, 1931, The Cotton Trade and Industrial Lancashire, 1600–1780, Manchester (provides good coverage of the partnership of Paul and Wyatt and of the early mills).E.Baines, 1835, History of the Cotton Manufacture in Great Britain, London (this publication must be mentioned, although it is now out of date).W.English, 1969, The Textile Industry, London (a more recent account).W.A.Benton, "John Wyatt and the weighing of heavy loads", Transactions of the Newcomen Society 9 (for a description of Wyatt's weighing machine).RLH -
18 Nature
To Newtonians, each question had its singular answer, one that would remain the same no matter who asked it, or why. But now, the uncertainty that undercuts every measurement of some fact in the real world compels the observer to choose which question to ask, which aspect of a phenomenon to study.The necessity of choice became overwhelmingly apparent when Heisenberg elevated uncertainty to a principle in quantum mechanics in 1927, having recognized that on the subatomic level the observer had to emphasize only one of a pair of properties to study at any one time. In one of the prominent interpretations of quantum mechanics, the idea took on a larger meaning: that in choosing what to study, the scientist in effect creates the object of his inquiry.... The impossibility of constructing a complete, accurate quantitative description of a complex system forces observers to pick which aspects of the system they most wish to understand....What one studies from among this wealth of choice depends on what one wants to know; the questions create-or at least determine-the range of possible answers. No such answer can be completely "true": instead of saying "This is what nature is like," they can claim only, "This is what nature seems like from here"-a vastly diminished claim from that of Newton. The critical issue raised by such subjectivity is how to decide what value each partial answer has, what connection it actually makes between the real world and our understanding of it. The object of study, the focus of much of modern science, has therefore shifted inward, to examine not nature itself but rather to study the abstract representations of nature, the choices made of what to leave in and what to drop out of any given study. (Levenson, 1995, pp. 228-229)Historical dictionary of quotations in cognitive science > Nature
См. также в других словарях:
Flight spare — When constructing equipment for a space mission, it is common to build a copy of each piece of equipment.This is known as the flight spare. This is built to the same specifications as the original equipment (the flight model ) and can be… … Wikipedia
Dominical Letter — • A device adopted from the Romans by the old chronologers to aid them in finding the day of the week corresponding to any given date, and indirectly to facilitate the adjustment of the Proprium de Tempore to the Proprium Sanctorum when… … Catholic encyclopedia
Ordinary least squares — This article is about the statistical properties of unweighted linear regression analysis. For more general regression analysis, see regression analysis. For linear regression on a single variable, see simple linear regression. For the… … Wikipedia
Wikipedia:Manual of Style/Disambiguation pages — This guideline is a part of the English Wikipedia s Manual of Style. Use common sense in applying it; it will have occasional exceptions. Please ensure that any edits to this page reflect consensus. Shortcuts: WP:MOSDAB MOS … Wikipedia
Kettle Valley Railway — The Kettle Valley Railway (KVR) was a subsidiary of the Canadian Pacific Railway that operated in the Thompson Okanagan region of southern British Columbia.It opened in 1915 and was abandoned in portions beginning in 1961, with the final segment… … Wikipedia
Sequent calculus — In proof theory and mathematical logic, sequent calculus is a family of formal systems sharing a certain style of inference and certain formal properties. The first sequent calculi, systems LK and LJ, were introduced by Gerhard Gentzen in 1934 as … Wikipedia
Critical literacy — Critical pedagogy Major works Pedagogy of the Oppressed … Wikipedia
Cryptanalysis — Close up of the rotors in a Fialka cipher machine Cryptanalysis (from the Greek kryptós, hidden , and analýein, to loosen or to untie ) is the study of methods for obtaining the meaning of encrypted information, without access to the secret… … Wikipedia
Valley of the Kings — The Valley of the Kings (Arabic: وادي الملوك Wadi Biban el Muluk ; Gates of the King ) [Reeves and Wilkinson (1996), p.6] is a valley in Egypt where, for a period of nearly 500 years from the 16th to 11th century BC, tombs were constructed for… … Wikipedia
Butt joint — For the geometry in welding, see Butt joint (welding). A butt joint is a joinery technique in which two members are joined by simply butting them together. The butt joint is the simplest joint to make since it merely involves cutting the members… … Wikipedia
Truss rod — A truss rod is a guitar part used to stabilize and adjust the lengthwise forward curvature (also called relief ), of the neck. Usually it is a steel rod that runs inside the neck and has a bolt that can be used to adjust its tension. The first… … Wikipedia