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1 overall impact
1) Военный термин: общее воздействие2) СМИ: всеобъемлющее воздействие -
2 overall impact
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3 overall impact
English-Russian dictionary of terms that are used in computer games > overall impact
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4 the overall impact
Общая лексика: совместное воздействие -
5 impact des transports sur l'environnement
воздействие транспорта на окружающую среду
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[ http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]EN
environmental impact of transport
Impact of transportation-related activities on the environment, in particular, those impacts dealing with air pollution, noise, displacement of people and businesses, disruption of wildlife habitats, and overall growth-inducing effects. (Source: RAU)
[http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]Тематики
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Франко-русский словарь нормативно-технической терминологии > impact des transports sur l'environnement
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6 environmental impact
English-Russian dictionary on nuclear energy > environmental impact
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7 environmental impact of transport
воздействие транспорта на окружающую среду
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[ http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]EN
environmental impact of transport
Impact of transportation-related activities on the environment, in particular, those impacts dealing with air pollution, noise, displacement of people and businesses, disruption of wildlife habitats, and overall growth-inducing effects. (Source: RAU)
[http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]Тематики
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Англо-русский словарь нормативно-технической терминологии > environmental impact of transport
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8 innovation
инновации
1. Процесс создания и освоения новых технологий и продуктов, приводящий к повышению эффективности производства. 2. Новая техника, технологии, являющиеся результатом научно-технического прогресса. Инновации, в современных условиях, достигаются преимущественно путем инвестиций в нематериальные активы (НИОКР, информационные технологии, переподготовку кадров, привлечение покупателей) Инновации в самом общем смысле, прежде всего, делятся на два класса: инновации процесса и инновации продукта, хотя они тесно связаны между собой; возможно как изготовление нового продукта старыми методами, так и изготовление старого продукта новыми методами – и наоборот. Не следует смешивать понятия инноваций и изобретений. Второе – более узко, относится к технике и технологии. Однако порою простая реорганизация производства ( а это организационная инновация) может принести не меньший экономический эффект, чем изобретение, техническое усовершенствование. Инновации – основа и движущая сила научно-технического прогресса во всех его видах: трудосберегающего, капиталосберегающего, нейтрального. Основоположник теории инноваций австрийский экономист Й.Шумпетер утверждал, что двигателем экономического развития выступает предприимчивость, выражающаяся в постоянном поиске новых комбинаций факторов производства, дающих предпринимателю возможность получать прибыль, большую по сравнению со средней. Все инновации связаны с большой долей риска. Но известно и другое: отказ от инноваций является еще более рисковым делом, поскольку ведет к замедлению научно-технического прогресса и экономического роста в целом.См. Диффузия инноваций.
[ http://slovar-lopatnikov.ru/]Тематики
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инновация
1. Вложение средств в экономику, обеспечивающее смену поколений техники и технологии.
2. Новая техника, технология, являющиеся результатом достижений научно-технического прогресса. Развитие изобретательства, появление пионерских и крупных изобретений является существенным фактором инновации.
[ http://www.lexikon.ru/dict/buh/index.html]
инновация
1.- См статью Иннновации, 2. — результат вложения средств (инвестиций) в разработку новой техники и технологии, во внедрение новых форм бизнеса, современных методов работы на рынке, новых товаров и услуг, финансовых инструментов.
[ http://slovar-lopatnikov.ru/]Параллельные тексты EN-RU из ABB Review. Перевод компании Интент
Partners in technologyNew challenges to a history of cooperation with customersПартнеры по технологииНовые уроки сотрудничества с заказчикамиABB’s predecessor companies, ASEA and BBC, were founded almost 120 years ago in a time when electromagnetism and Maxwell’s equations were considered “rocket science.” Since then several technological transitions have occurred and ABB has successfully outlived them all while many other companies vanished at some point along the way. This has been possible because of innovation and a willingness to learn from history. Understanding historical connections between products, technology and industrial economics is extremely Partners in technology New challenges to a history of cooperation with customers George A. Fodor, Sten Linder, Jan-Erik Ibstedt, Lennart Thegel, Fredrik Norlund, Håkan Wintzell, Jarl Sobel important when planning future technologies and innovations.Предшественницы АББ, компании ASEA и BBC, были основаны почти 120 лет назад, в то время, когда электромагнетизм и уравнения Максвелла считались «космическими технологиями». С тех пор прошло несколько технических революций и АББ успешно пережила их все, в то время как многие другие компании затерялись по дороге. Это стало возможным, благодаря постоянным инновациям и стремлению учиться на уроках истории. Для планирования будущих технологий и инноваций огромную роль играет понимание исторических взаимосвязей между продуктами, технологиями и экономикойThese connections rely on information channels in companies and their existence cannot be underestimated if a company is to survive. An organization can acquire more information than any one individual, and the optimal use of this information depends on the existence and types of communication channels between those working in a company and the relevant people outside it.Эти взаимосвязи опираются на существующие в компании информационные каналы и, если компания намерена выжить, их значение нельзя недооценивать. Организация может накопить значительно больше информации, чем любой отдельный человек, и оптимальное использование этой информации зависит от наличия и типов коммуникационных каналов между работниками компании и причастными людьми за ее пределами.Force Measurement, a division of ABB AB, has a long tradition of innovation. Thanks to strong ties with its customers, suppliers, research institutes and universities, Force Measurement provides state-of-the-art equipment for accurate and reliable measurement and control in a broad range of applications. At the same time, established principles such as Maxwell’s equations continue to be applied in new and surprisingly innovative ways to produce products that promote long-term growth and increased competitiveness.Группа измерения компании АББ имеет давние традиции использования инноваций. Благодаря прочным связям с заказчиками, поставщиками, исследовательскими институтами и университетами, она создает уникальное оборудование для точных и надежных измерений в самых разных областях. В то же время незыблемые принципы, подобные уравнениям Максвелла, продолжают применяться новыми и удивительно инновационными способами, позволяя создавать продукты, обеспечивающие устойчивый рост и высокую конкурентоспособность.Innovation is a key factor if companies and their customers are to survive what can only be called truly testing times. The target of innovation is to find and implement ideas that reshape industries, reinvent markets and redesign value chains, and many of these ideas come from innovative customers.Если компания и ее заказчики намерены пережить тяжелые времена, то основное внимание следует обратить на инновации. Целью инноваций является поиск и воплощение идей, позволяющих перевернуть промышленность, заново открыть рынки и перестроить стоимостные цепочки, причем многие из этих идей поступают от заказчиков.Key to successful innovation is communication or the types of information channels employed by firms [1, 2]. A global company like ABB, with offices and factories spanning 90 countries, faces many challenges in maintaining information channels. First of all, there are the internal challenges. Ideas need to be evaluated from many different perspectives to determine their overall impact on the market. Selecting the most effective ones requires expertise and teamwork from the various business, marketing and technology competence groups. Just as important are the channels of communication that exist between ABB, and its customers and suppliers.Секрет успешных инноваций кроется в типах используемых фирмой информационных каналов [1, 2]. Глобальные компании, подобные АББ, с офисами и заводами более чем в 90 странах, сталкиваются с серьезными проблемами управления информационными каналами. Во-первых, существуют внутренние проблемы. Чтобы определить ценность идеи и ее общее влияние на рынок, ее нужно подвергнуть всесторонней оценке. Выбор наиболее эффективных идей требует коллективной работы различных экономических, маркетинговых и технологических групп. Не менее важны и коммуникационные каналы между компанией АББ и ее заказчиками и поставщиками.Many of ABB’s customers come from countries that are gradually developing strong technology and scientific cultures thanks to major investments in very ambitious research programs. China and India, for example, are two such countries. In fact, the Chinese Academy of Sciences is currently conducting research projects in all state of-the-art technologies. Countries in Africa and Eastern Europe are capitalizing on their pool of young talent to create a culture of technology development. Emerging markets, while welcome, mean stiffer competition, and competition to companies like ABB encourages even greater levels of innovationМногие заказчики АББ пришли из стран, постоянно развивающих сильную технологию и научную культуру путем крупных инвестиций в грандиозные исследовательские программы. К таким странам относятся, например, Индия и Китай. На самом деле, Китайская академия наук ведет исследования по всем перспективным направлениям. Страны Африки и Восточной Европы делают ставку на молодые таланты, которым предстоит создавать культуру технологического развития. Новые рынки, хоть и привлекательны, ужесточают конкуренцию, а конкуренция с такими компаниями, как АББ способствует повышению уровня инноваций.Many customers, similar stories Backed by 120 years of technological development and experience, ABB continues to produce products and services in many automation, power generation and robotics fields, and the examples described in the following section illustrate this broad customer range.Заказчиков много, история однаОпираясь более чем на 120-летний опыт технологического развития, АББ продолжает выпускать продукты и оказывать услуги во многих отраслях, связанных с автоматизацией, генерацией энергии и робототехникой. Приведенные далее при меры иллюстрируют широкий диапазон таких заказчиков.Тематики
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3.1.29 инновация (innovation): Конечный результат инновационной деятельности, получивший реализацию в виде нового или усовершенствованного продукта, реализуемого на рынке, нового или усовершенствованного технологического процесса, используемого в практической деятельности.
Источник: ГОСТ Р 54147-2010: Стратегический и инновационный менеджмент. Термины и определения оригинал документа
Англо-русский словарь нормативно-технической терминологии > innovation
9 near cash
!гос. фин. The resource budget contains a separate control total for “near cash” expenditure, that is expenditure such as pay and current grants which impacts directly on the measure of the golden rule.This paper provides background information on the framework for the planning and control of public expenditure in the UK which has been operated since the 1998 Comprehensive Spending Review (CSR). It sets out the different classifications of spending for budgeting purposes and why these distinctions have been adopted. It discusses how the public expenditure framework is designed to ensure both sound public finances and an outcome-focused approach to public expenditure.The UK's public spending framework is based on several key principles:"consistency with a long-term, prudent and transparent regime for managing the public finances as a whole;" "the judgement of success by policy outcomes rather than resource inputs;" "strong incentives for departments and their partners in service delivery to plan over several years and plan together where appropriate so as to deliver better public services with greater cost effectiveness; and"the proper costing and management of capital assets to provide the right incentives for public investment.The Government sets policy to meet two firm fiscal rules:"the Golden Rule states that over the economic cycle, the Government will borrow only to invest and not to fund current spending; and"the Sustainable Investment Rule states that net public debt as a proportion of GDP will be held over the economic cycle at a stable and prudent level. Other things being equal, net debt will be maintained below 40 per cent of GDP over the economic cycle.Achievement of the fiscal rules is assessed by reference to the national accounts, which are produced by the Office for National Statistics, acting as an independent agency. The Government sets its spending envelope to comply with these fiscal rules.Departmental Expenditure Limits ( DEL) and Annually Managed Expenditure (AME)"Departmental Expenditure Limit ( DEL) spending, which is planned and controlled on a three year basis in Spending Reviews; and"Annually Managed Expenditure ( AME), which is expenditure which cannot reasonably be subject to firm, multi-year limits in the same way as DEL. AME includes social security benefits, local authority self-financed expenditure, debt interest, and payments to EU institutions.More information about DEL and AME is set out below.In Spending Reviews, firm DEL plans are set for departments for three years. To ensure consistency with the Government's fiscal rules departments are set separate resource (current) and capital budgets. The resource budget contains a separate control total for “near cash” expenditure, that is expenditure such as pay and current grants which impacts directly on the measure of the golden rule.To encourage departments to plan over the medium term departments may carry forward unspent DEL provision from one year into the next and, subject to the normal tests for tautness and realism of plans, may be drawn down in future years. This end-year flexibility also removes any incentive for departments to use up their provision as the year end approaches with less regard to value for money. For the full benefits of this flexibility and of three year plans to feed through into improved public service delivery, end-year flexibility and three year budgets should be cascaded from departments to executive agencies and other budget holders.Three year budgets and end-year flexibility give those managing public services the stability to plan their operations on a sensible time scale. Further, the system means that departments cannot seek to bid up funds each year (before 1997, three year plans were set and reviewed in annual Public Expenditure Surveys). So the credibility of medium-term plans has been enhanced at both central and departmental level.Departments have certainty over the budgetary allocation over the medium term and these multi-year DEL plans are strictly enforced. Departments are expected to prioritise competing pressures and fund these within their overall annual limits, as set in Spending Reviews. So the DEL system provides a strong incentive to control costs and maximise value for money.There is a small centrally held DEL Reserve. Support from the Reserve is available only for genuinely unforeseeable contingencies which departments cannot be expected to manage within their DEL.AME typically consists of programmes which are large, volatile and demand-led, and which therefore cannot reasonably be subject to firm multi-year limits. The biggest single element is social security spending. Other items include tax credits, Local Authority Self Financed Expenditure, Scottish Executive spending financed by non-domestic rates, and spending financed from the proceeds of the National Lottery.AME is reviewed twice a year as part of the Budget and Pre-Budget Report process reflecting the close integration of the tax and benefit system, which was enhanced by the introduction of tax credits.AME is not subject to the same three year expenditure limits as DEL, but is still part of the overall envelope for public expenditure. Affordability is taken into account when policy decisions affecting AME are made. The Government has committed itself not to take policy measures which are likely to have the effect of increasing social security or other elements of AME without taking steps to ensure that the effects of those decisions can be accommodated prudently within the Government's fiscal rules.Given an overall envelope for public spending, forecasts of AME affect the level of resources available for DEL spending. Cautious estimates and the AME margin are built in to these AME forecasts and reduce the risk of overspending on AME.Together, DEL plus AME sum to Total Managed Expenditure (TME). TME is a measure drawn from national accounts. It represents the current and capital spending of the public sector. The public sector is made up of central government, local government and public corporations.Resource and Capital Budgets are set in terms of accruals information. Accruals information measures resources as they are consumed rather than when the cash is paid. So for example the Resource Budget includes a charge for depreciation, a measure of the consumption or wearing out of capital assets."Non cash charges in budgets do not impact directly on the fiscal framework. That may be because the national accounts use a different way of measuring the same thing, for example in the case of the depreciation of departmental assets. Or it may be that the national accounts measure something different: for example, resource budgets include a cost of capital charge reflecting the opportunity cost of holding capital; the national accounts include debt interest."Within the Resource Budget DEL, departments have separate controls on:"Near cash spending, the sub set of Resource Budgets which impacts directly on the Golden Rule; and"The amount of their Resource Budget DEL that departments may spend on running themselves (e.g. paying most civil servants’ salaries) is limited by Administration Budgets, which are set in Spending Reviews. Administration Budgets are used to ensure that as much money as practicable is available for front line services and programmes. These budgets also help to drive efficiency improvements in departments’ own activities. Administration Budgets exclude the costs of frontline services delivered directly by departments.The Budget preceding a Spending Review sets an overall envelope for public spending that is consistent with the fiscal rules for the period covered by the Spending Review. In the Spending Review, the Budget AME forecast for year one of the Spending Review period is updated, and AME forecasts are made for the later years of the Spending Review period.The 1998 Comprehensive Spending Review ( CSR), which was published in July 1998, was a comprehensive review of departmental aims and objectives alongside a zero-based analysis of each spending programme to determine the best way of delivering the Government's objectives. The 1998 CSR allocated substantial additional resources to the Government's key priorities, particularly education and health, for the three year period from 1999-2000 to 2001-02.Delivering better public services does not just depend on how much money the Government spends, but also on how well it spends it. Therefore the 1998 CSR introduced Public Service Agreements (PSAs). Each major government department was given its own PSA setting out clear targets for achievements in terms of public service improvements.The 1998 CSR also introduced the DEL/ AME framework for the control of public spending, and made other framework changes. Building on the investment and reforms delivered by the 1998 CSR, successive spending reviews in 2000, 2002 and 2004 have:"provided significant increase in resources for the Government’s priorities, in particular health and education, and cross-cutting themes such as raising productivity; extending opportunity; and building strong and secure communities;" "enabled the Government significantly to increase investment in public assets and address the legacy of under investment from past decades. Departmental Investment Strategies were introduced in SR2000. As a result there has been a steady increase in public sector net investment from less than ¾ of a per cent of GDP in 1997-98 to 2¼ per cent of GDP in 2005-06, providing better infrastructure across public services;" "introduced further refinements to the performance management framework. PSA targets have been reduced in number over successive spending reviews from around 300 to 110 to give greater focus to the Government’s highest priorities. The targets have become increasingly outcome-focused to deliver further improvements in key areas of public service delivery across Government. They have also been refined in line with the conclusions of the Devolving Decision Making Review to provide a framework which encourages greater devolution and local flexibility. Technical Notes were introduced in SR2000 explaining how performance against each PSA target will be measured; and"not only allocated near cash spending to departments, but also – since SR2002 - set Resource DEL plans for non cash spending.To identify what further investments and reforms are needed to equip the UK for the global challenges of the decade ahead, on 19 July 2005 the Chief Secretary to the Treasury announced that the Government intends to launch a second Comprehensive Spending Review (CSR) reporting in 2007.A decade on from the first CSR, the 2007 CSR will represent a long-term and fundamental review of government expenditure. It will cover departmental allocations for 2008-09, 2009-10 and 2010 11. Allocations for 2007-08 will be held to the agreed figures already announced by the 2004 Spending Review. To provide a rigorous analytical framework for these departmental allocations, the Government will be taking forward a programme of preparatory work over 2006 involving:"an assessment of what the sustained increases in spending and reforms to public service delivery have achieved since the first CSR. The assessment will inform the setting of new objectives for the decade ahead;" "an examination of the key long-term trends and challenges that will shape the next decade – including demographic and socio-economic change, globalisation, climate and environmental change, global insecurity and technological change – together with an assessment of how public services will need to respond;" "to release the resources needed to address these challenges, and to continue to secure maximum value for money from public spending over the CSR period, a set of zero-based reviews of departments’ baseline expenditure to assess its effectiveness in delivering the Government’s long-term objectives; together with"further development of the efficiency programme, building on the cross cutting areas identified in the Gershon Review, to embed and extend ongoing efficiency savings into departmental expenditure planning.The 2007 CSR also offers the opportunity to continue to refine the PSA framework so that it drives effective delivery and the attainment of ambitious national standards.Public Service Agreements (PSAs) were introduced in the 1998 CSR. They set out agreed targets detailing the outputs and outcomes departments are expected to deliver with the resources allocated to them. The new spending regime places a strong emphasis on outcome targets, for example in providing for better health and higher educational standards or service standards. The introduction in SR2004 of PSA ‘standards’ will ensure that high standards in priority areas are maintained.The Government monitors progress against PSA targets, and departments report in detail twice a year in their annual Departmental Reports (published in spring) and in their autumn performance reports. These reports provide Parliament and the public with regular updates on departments’ performance against their targets.Technical Notes explain how performance against each PSA target will be measured.To make the most of both new investment and existing assets, there needs to be a coherent long term strategy against which investment decisions are taken. Departmental Investment Strategies (DIS) set out each department's plans to deliver the scale and quality of capital stock needed to underpin its objectives. The DIS includes information about the department's existing capital stock and future plans for that stock, as well as plans for new investment. It also sets out the systems that the department has in place to ensure that it delivers its capital programmes effectively.This document was updated on 19 December 2005.Near-cash resource expenditure that has a related cash implication, even though the timing of the cash payment may be slightly different. For example, expenditure on gas or electricity supply is incurred as the fuel is used, though the cash payment might be made in arrears on aquarterly basis. Other examples of near-cash expenditure are: pay, rental.Net cash requirement the upper limit agreed by Parliament on the cash which a department may draw from theConsolidated Fund to finance the expenditure within the ambit of its Request forResources. It is equal to the agreed amount of net resources and net capital less non-cashitems and working capital.Non-cash cost costs where there is no cash transaction but which are included in a body’s accounts (or taken into account in charging for a service) to establish the true cost of all the resourcesused.Non-departmental a body which has a role in the processes of government, but is not a government public body, NDPBdepartment or part of one. NDPBs accordingly operate at arm’s length from governmentMinisters.Notional cost of a cost which is taken into account in setting fees and charges to improve comparability with insuranceprivate sector service providers.The charge takes account of the fact that public bodies donot generally pay an insurance premium to a commercial insurer.the independent body responsible for collecting and publishing official statistics about theUK’s society and economy. (At the time of going to print legislation was progressing tochange this body to the Statistics Board).Office of Government an office of the Treasury, with a status similar to that of an agency, which aims to maximise Commerce, OGCthe government’s purchasing power for routine items and combine professional expertiseto bear on capital projects.Office of the the government department responsible for discharging the Paymaster General’s statutoryPaymaster General,responsibilities to hold accounts and make payments for government departments and OPGother public bodies.Orange bookthe informal title for Management of Risks: Principles and Concepts, which is published by theTreasury for the guidance of public sector bodies.Office for NationalStatistics, ONS60Managing Public Money————————————————————————————————————————"GLOSSARYOverdraftan account with a negative balance.Parliament’s formal agreement to authorise an activity or expenditure.Prerogative powerspowers exercisable under the Royal Prerogative, ie powers which are unique to the Crown,as contrasted with common-law powers which may be available to the Crown on the samebasis as to natural persons.Primary legislationActs which have been passed by the Westminster Parliament and, where they haveappropriate powers, the Scottish Parliament and the Northern Ireland Assembly. Begin asBills until they have received Royal Assent.arrangements under which a public sector organisation contracts with a private sectorentity to construct a facility and provide associated services of a specified quality over asustained period. See annex 7.5.Proprietythe principle that patterns of resource consumption should respect Parliament’s intentions,conventions and control procedures, including any laid down by the PAC. See box 2.4.Public Accountssee Committee of Public Accounts.CommitteePublic corporationa trading body controlled by central government, local authority or other publiccorporation that has substantial day to day operating independence. See section 7.8.Public Dividend finance provided by government to public sector bodies as an equity stake; an alternative to Capital, PDCloan finance.Public Service sets out what the public can expect the government to deliver with its resources. EveryAgreement, PSAlarge government department has PSA(s) which specify deliverables as targets or aimsrelated to objectives.a structured arrangement between a public sector and a private sector organisation tosecure an outcome delivering good value for money for the public sector. It is classified tothe public or private sector according to which has more control.Rate of returnthe financial remuneration delivered by a particular project or enterprise, expressed as apercentage of the net assets employed.Regularitythe principle that resource consumption should accord with the relevant legislation, therelevant delegated authority and this document. See box 2.4.Request for the functional level into which departmental Estimates may be split. RfRs contain a number Resources, RfRof functions being carried out by the department in pursuit of one or more of thatdepartment’s objectives.Resource accountan accruals account produced in line with the Financial Reporting Manual (FReM).Resource accountingthe system under which budgets, Estimates and accounts are constructed in a similar wayto commercial audited accounts, so that both plans and records of expenditure allow in fullfor the goods and services which are to be, or have been, consumed – ie not just the cashexpended.Resource budgetthe means by which the government plans and controls the expenditure of resources tomeet its objectives.Restitutiona legal concept which allows money and property to be returned to its rightful owner. Ittypically operates where another person can be said to have been unjustly enriched byreceiving such monies.Return on capital the ratio of profit to capital employed of an accounting entity during an identified period.employed, ROCEVarious measures of profit and of capital employed may be used in calculating the ratio.Public Privatepartnership, PPPPrivate Finance Initiative, PFIParliamentaryauthority61Managing Public Money"————————————————————————————————————————GLOSSARYRoyal charterthe document setting out the powers and constitution of a corporation established underprerogative power of the monarch acting on Privy Council advice.Second readingthe second formal time that a House of Parliament may debate a bill, although in practicethe first substantive debate on its content. If successful, it is deemed to denoteParliamentary approval of the principle of the proposed legislation.Secondary legislationlaws, including orders and regulations, which are made using powers in primary legislation.Normally used to set out technical and administrative provision in greater detail thanprimary legislation, they are subject to a less intense level of scrutiny in Parliament.European legislation is,however,often implemented in secondary legislation using powers inthe European Communities Act 1972.Service-level agreement between parties, setting out in detail the level of service to be performed.agreementWhere agreements are between central government bodies, they are not legally a contractbut have a similar function.Shareholder Executive a body created to improve the government’s performance as a shareholder in businesses.Spending reviewsets out the key improvements in public services that the public can expect over a givenperiod. It includes a thorough review of departmental aims and objectives to find the bestway of delivering the government’s objectives, and sets out the spending plans for the givenperiod.State aidstate support for a domestic body or company which could distort EU competition and sois not usually allowed. See annex 4.9.Statement of Excessa formal statement detailing departments’ overspends prepared by the Comptroller andAuditor General as a result of undertaking annual audits.Statement on Internal an annual statement that Accounting Officers are required to make as part of the accounts Control, SICon a range of risk and control issues.Subheadindividual elements of departmental expenditure identifiable in Estimates as single cells, forexample cell A1 being administration costs within a particular line of departmental spending.Supplyresources voted by Parliament in response to Estimates, for expenditure by governmentdepartments.Supply Estimatesa statement of the resources the government needs in the coming financial year, and forwhat purpose(s), by which Parliamentary authority is sought for the planned level ofexpenditure and income.Target rate of returnthe rate of return required of a project or enterprise over a given period, usually at least a year.Third sectorprivate sector bodies which do not act commercially,including charities,social and voluntaryorganisations and other not-for-profit collectives. See annex 7.7.Total Managed a Treasury budgeting term which covers all current and capital spending carried out by the Expenditure,TMEpublic sector (ie not just by central departments).Trading fundan organisation (either within a government department or forming one) which is largely orwholly financed from commercial revenue generated by its activities. Its Estimate shows itsnet impact, allowing its income from receipts to be devoted entirely to its business.Treasury Minutea formal administrative document drawn up by the Treasury, which may serve a wide varietyof purposes including seeking Parliamentary approval for the use of receipts asappropriations in aid, a remission of some or all of the principal of voted loans, andresponding on behalf of the government to reports by the Public Accounts Committee(PAC).62Managing Public Money————————————————————————————————————————GLOSSARY63Managing Public MoneyValue for moneythe process under which organisation’s procurement, projects and processes aresystematically evaluated and assessed to provide confidence about suitability, effectiveness,prudence,quality,value and avoidance of error and other waste,judged for the public sectoras a whole.Virementthe process through which funds are moved between subheads such that additionalexpenditure on one is met by savings on one or more others.Votethe process by which Parliament approves funds in response to supply Estimates.Voted expenditureprovision for expenditure that has been authorised by Parliament. Parliament ‘votes’authority for public expenditure through the Supply Estimates process. Most expenditureby central government departments is authorised in this way.Wider market activity activities undertaken by central government organisations outside their statutory duties,using spare capacity and aimed at generating a commercial profit. See annex 7.6.Windfallmonies received by a department which were not anticipated in the spending review.————————————————————————————————————————10 strength
1) сила; интенсивность2) прочность; предел прочности, временное сопротивление ( материала)3) напряжённость ( поля)4) крепость, концентрация ( раствора)5) численность, количество•-
abrasion coke strength
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absorption strength
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acid strength
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adhesion strength
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adhesive fracture strength
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aged strength
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air-dry strength
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alcohol strength
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annealed strength
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aroma strength
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baked strength
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baking strength
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base strength
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beam strength
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bearing strength
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bending strength
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bonding strength
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bond strength
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breakdown strength
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breaking strength
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brine strength
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brittle strength
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buckling strength
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bulk strength
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bursting strength
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burst strength
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caking strength
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carcass strength
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cartridge strength
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Charpy impact strength
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cleavage strength
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coating strength
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cohesive fracture strength
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cohesive strength
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cold-work strength
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collecting strength
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color strength
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combined strength
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compression strength
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compression yield strength
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conventional yield strength
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corrosion fatigue strength
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crack strength
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creep rupture strength
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creep strength
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cross direction strength
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cross strength
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crushing strength
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cube crushing strength
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cured tensile strength
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current strength
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dielectric strength
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disruptive electric strength
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dry bond strength
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dry strength
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dye strength
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dynamic strength
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electric field strength
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electric strength
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endurance strength
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field strength
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film strength
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flavor strength
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flexural strength
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flow strength
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fluorescence strength
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folding strength
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fore-and-aft strength
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full strength
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gel strength
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green bond strength
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green strength
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high-temperature strength
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image strength
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impact fatigue strength
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impact puncture strength
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impact strength
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impulse strength
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ink strength
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insulating strength
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interference field strength
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interlaminar strength
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knot strength
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liquor strength
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longitudinal strength
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long-term strength
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loop strength
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magnetic field strength
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magnetic pole strength
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mask strength
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mechanical strength
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notch impact strength
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offset yield strength
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opening strength
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overall strength
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paper wet strength
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pavement strength
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peel strength
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picking strength
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plastic strength
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plybond strength
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proof strength
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pull strength
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puncture strength
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radio field strength
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raw-tensile strength
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repeated flexural strength
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repeated impact bending strength
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retained strength
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rubber-to-cord-bond strength
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rupture strength
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sand strength
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setting strength
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shearing strength
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shear strength
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shear-through-thickness strength
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shock strength
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short-time strength
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signal strength
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sliding strength
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solution strength
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solvent strength
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source strength
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specific dielectric strength
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static strength
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strength of coupling
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strength of insulation
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strength of pole
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strength of radiation
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strength of shade
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stripping strength
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structural strength
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surface strength
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tearing strength
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tensile splitting strength
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tensile strength
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tensile yield strength
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thermal short-circuit strength
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thread strength
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tinctorial strength
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torsional strength
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transverse strength
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twisting strength
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U strength
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ultimate strength
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vibration strength
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wave strength
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weight strength
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weld strength
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wet bursting strength
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wet strength
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wind strength
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working strength
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yield strength11 modular data center
модульный центр обработки данных (ЦОД)
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[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
12 Umweltbelastung durch Verkehr
воздействие транспорта на окружающую среду
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[ http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]EN
environmental impact of transport
Impact of transportation-related activities on the environment, in particular, those impacts dealing with air pollution, noise, displacement of people and businesses, disruption of wildlife habitats, and overall growth-inducing effects. (Source: RAU)
[http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]Тематики
EN
DE
FR
Немецко-русский словарь нормативно-технической терминологии > Umweltbelastung durch Verkehr
13 coefficient
- accumulation coefficient
- adhesion coefficient
- adsorption coefficient
- air permeability coefficient
- amplification coefficient
- angular coefficient
- attenuation coefficient
- average gain coefficient
- backward scattering coefficient
- bending-moment coefficient
- bending-stiffness coefficient
- block coefficient
- center distance modification coefficient
- coefficient of absorption
- coefficient of amplification
- coefficient of collar friction
- coefficient of compressibility
- coefficient of contact friction
- coefficient of correction
- coefficient of corrosion
- coefficient of discharge
- coefficient of dynamic stiffness
- coefficient of efficiency
- coefficient of elasticity
- coefficient of engagement
- coefficient of expansion
- coefficient of friction
- coefficient of hardness
- coefficient of heat conduction
- coefficient of heat conductivity
- coefficient of heat passage
- coefficient of heat transfer
- coefficient of heat transmission
- coefficient of impact
- coefficient of increase of the average output velocity
- coefficient of journal friction
- coefficient of kinetic friction
- coefficient of leakage
- coefficient of lift
- coefficient of linear expansion
- coefficient of load
- coefficient of mechanical efficiency
- coefficient of merit
- coefficient of mutual overlap
- coefficient of nonuniformity of motion
- coefficient of reduction
- coefficient of resistance
- coefficient of restitution
- coefficient of rigidity
- coefficient of starting friction
- coefficient of static friction
- coefficient of superficial expansion
- coefficient of thermal efficiency
- coefficient of tooth friction
- coefficient of utilization
- coefficient of velocity
- coefficient of volume expansion
- coefficient of volumetric expansibility
- compliance coefficient
- compression coefficient
- compressive-buckling coefficient
- confidence coefficient
- control action coefficient
- control coefficient
- correlation coefficient
- coupling coefficient
- critical stress coefficient
- damping coefficient
- decay coefficient
- deflection coefficient
- dielectric coefficient
- dimensionless coefficient
- discharge coefficient
- distortion coefficient
- distribution coefficient
- elastic coefficient
- energy absorption coefficient
- energy transfer coefficient
- expansion coefficient
- extinction coefficient
- feedback coefficient
- flow coefficient
- force coefficient
- friction coefficient
- fusion coefficient
- gain coefficient
- general gain coefficient
- heat transfer coefficient
- heat transmission coefficient
- heat-conduction coefficient
- hydrodynamic loss coefficient
- inertial coefficient
- influence coefficient
- interference coefficient
- internal damping coefficient
- interpolation coefficient
- ionization gage coefficient
- irregularity coefficient
- kinematic coefficient
- lag coefficient
- literal coefficient
- loss coefficient
- magnetic coefficient
- modification coefficient
- nondimensional coefficient
- numerical coefficient
- overall coefficient
- overall heat transfer coefficient
- overall steady-flow coefficient
- pairwise similarity coefficient
- periodical coefficient
- pipe resistance coefficient
- position error coefficient
- power loading coefficient
- pressure coefficient
- pressure-drop coefficient
- profile drag coefficient
- profile shift coefficient
- proportional action coefficient
- pulsation coefficient
- recalculation coefficient
- reduced heat transmission coefficient
- reduction coefficient
- reflection coefficient
- relative improvement coefficient
- reliability coefficient
- reset coefficient
- restoring coefficient
- roughness coefficient
- safety coefficient
- SAW coupling coefficient
- scale coefficient
- serial expansion coefficient
- shear stiffness coefficient
- shifting coefficient
- similarity coefficient
- slip coefficient
- specific utilization coefficient
- speed coefficient
- surface heat exchange coefficient
- temperature coefficient of resistivity
- temperature coefficient
- temperature diffusivity coefficient of the material
- thermal expansion coefficient
- thermal storage capacity coefficient of the material
- total heat transfer coefficient
- traction coefficient
- transfer-function coefficient
- transmission coefficient
- trial coefficient
- utilization coefficient
- vapor permeability coefficient of the material
- variable coefficient
- velocity error coefficient
- volume coefficient
- weighting coefficientEnglish-Russian dictionary of mechanical engineering and automation > coefficient
14 coefficient
- coefficient of acidity - coefficient of adhesion - coefficient of admission - coefficient of air resistance - coefficient of attenuation - coefficient of brightness - coefficient of charge - coefficient of cohesion - coefficient of compressibility - coefficient of conduction - coefficient of conductivity - coefficient of consolidation - coefficient of contraction - coefficient of contrast - coefficient of correction - coefficient of cubical expansion - coefficient of cyclic variation - coefficient of deformation - coefficient of dilution - coefficient of discharge - coefficient of dispersion - coefficient of earth pressure - coefficient of efficiency - coefficient of elasticity - coefficient of expansion - coefficient of expansion by heat - coefficient of extension - coefficient of fast power - coefficient of filtration - coefficient of flat expansion - coefficient of flow - coefficient of fuel - coefficient of haze - coefficient of heat absorption - coefficient of heat conductivity - coefficient of heat emission - coefficient of heat passage - coefficient of heat transfer - coefficient of heat transmission - coefficient of impact - coefficient of internal friction - coefficient of light diffusion - coefficient of mechanical efficiency - coefficient of moisture precipitation - coefficient of oscillation - coefficient of overall heat - coefficient of overflow - coefficient of passive earth pressure - coefficient of performance - coefficient of permeability - coefficient of radiation - coefficient of recovery - coefficient of resistance - coefficient of restitution - coefficient of roughness - coefficient of rugosity - coefficient of safety - coefficient of soil reaction - coefficient of storage - coefficient of subgrade - coefficient of subgrade reaction - coefficient of thermal conductivity - coefficient of thermal efficiency - coefficient of thermal expansion - coefficient of thermal transmission - coefficient of torsion - coefficient of transmissibility - coefficient of uniformity - coefficient of utilization - coefficient of variation - coefficient of velocity - coefficient of viscosity - coefficient of wear - absorption coefficient - abuse coefficient - acoustic absorption coefficient - acoustic reflection coefficient - aeration coefficient - aerodynamical coefficient - assurance coefficient - attenuation coefficient - bending moments coefficients - buckling coefficient - collision coefficient - compression coefficient - consolidation coefficient - contraction coefficient - correlation coefficient - cost coefficient - creep coefficient - damping coefficient - decay coefficient - dependability coefficient - dewatering coefficient - diffusion coefficient - discharge coefficient - distribution coefficient - drainage coefficient - dynamic coefficient - efficiency coefficient - emissivity coefficient - extinguishing coefficient - filtration coefficient - flexibility coefficient - friction coefficient - fusing coefficient - heat convection coefficient - heat emission coefficient - heat loss coefficient - heat transfer coefficient - transmission coefficient - hygroscopic coefficient - infiltration coefficient - influence coefficient - inside film coefficient - internal friction coefficient - kinematic coefficient of viscosity - labour coefficient - lateral pressure coefficient - lateral earth pressure coefficient - leakage coefficient - length coefficient - line expansion coefficient - load coefficient - moderating coefficient - noise coefficient - noise reduction coefficient - numerical coefficient - permeability coefficient - plasticity coefficient - positive coefficient - power coefficient - reduction coefficient - reflection coefficient - reliability coefficient - rotational inertia coefficient - roughness coefficient - run-off coefficient - safety coefficient - saturation coefficient - slope-deflection coefficient - sound-absorbing coefficient - sound absorption coefficient - stability coefficient - strength coefficient - surface coefficient - temperature coefficient - thermal conductivity coefficient - transfer coefficient - uniformity coefficient - vapour permeability coefficient - void coefficient - waste coefficient - weir coefficient* * *коэффициент; множитель; параметр; индекс- coefficient of active earth pressure
- coefficient of compressibility
- coefficient of conductivity
- coefficient of consolidation
- coefficient of contraction
- coefficient of creep
- coefficient of cubical expansion
- coefficient of curvature
- coefficient of discharge
- coefficient of earth pressure
- coefficient of elasticity
- coefficient of expansion
- coefficient of filtration
- coefficient of friction
- coefficient of heat pump performance
- coefficient of heat transfer
- coefficient of internal friction
- coefficient of kinetic friction
- coefficient of linear expansion
- coefficient of moisture precipitation
- coefficient of natural relative collapsibility
- coefficient of overall heat transmission
- coefficient of passive earth pressure
- coefficient of performance
- coefficient of permeability
- coefficient of permeability to water
- coefficient of radiation
- coefficient of reduction
- coefficient of resistance
- coefficient of restitution
- coefficient of retardation
- coefficient of rigidity
- coefficient of rolling friction
- coefficient of roughness
- coefficient of safety
- coefficient of sliding friction
- coefficient of soil reaction
- coefficient of sorting
- coefficient of static friction
- coefficient of storage
- coefficient of strain
- coefficient of subgrade reaction
- coefficient of surface conductance
- coefficient of thermal conductivity
- coefficient of thermal expansion
- coefficient of thermal stability
- coefficient of transmissibility
- coefficient of uniformity
- coefficient of utilization
- coefficient of variation
- coefficient of volume change
- coefficient of water demand
- coefficient of wear
- absolute viscosity coefficient
- aerodynamic coefficient
- attenuation coefficient
- bending moment coefficients
- buckling coefficient
- Chézy discharge coefficient
- collision coefficient
- consolidation coefficient
- contraction coefficient
- correlation coefficient
- creep coefficient
- curvature coefficient
- damping coefficient
- dewatering coefficient
- dimensionless coefficient
- discharge coefficient
- distribution coefficient
- drag coefficient
- drainage coefficient
- expansion coefficient
- film coefficient of heat transfer
- flow coefficient
- frictional coefficient
- friction coefficient
- head loss coefficient
- heat absorption coefficient
- heat-conduction coefficient
- heat emission coefficient
- heat transfer coefficient
- hydroscopic coefficient
- infiltration coefficient
- inside film coefficient
- kinematic viscosity coefficient
- Lamq coefficient
- leakage coefficient
- linear expansion coefficient
- loss coefficient
- Manning's roughness coefficient
- mass transfer coefficient
- noise reduction coefficient
- numerical coefficient
- outside film coefficient of heat transfer
- outside film coefficient
- overall coefficient of heat transfer
- performance coefficient
- permeability coefficient
- power coefficient
- pressure coefficient
- radiation heat transfer coefficient
- reduction coefficient
- reflection coefficient
- reliability coefficient
- resistance coefficient
- rotational inertia coefficient
- runoff coefficient
- safety coefficient
- saturation coefficient
- shear coefficient
- shrinkage coefficient
- solar absorption coefficient
- sorting coefficient
- sound absorption coefficient
- sound reflection coefficient
- sound transmission coefficient
- stability coefficient
- stiffness coefficient
- storage coefficient
- strain-hardening coefficient
- strength coefficient
- surface coefficient of heat transfer
- temperature conductivity coefficient
- thermal expansion coefficient
- transmissibility coefficient
- vapor permeability coefficient
- viscosity coefficient
- void coefficient
- volumetric coefficient of thermal expansion
- weir coefficient
- wobble coefficient15 assessment
əˈsesmənt сущ.
1) обложение;
сумма обложения( налогом) An assessment was prepared, based upon the supposed population of the Colonies. ≈ Сетка обложения налогом была составлена на основе предполагаемой численности населения колоний. special assessment ≈ дополнительная налоговая оценка
2) оценка, определение ценности, определение стоимости She made a careful assessment of the situation. ≈ Она очень точно оценила положение дел. It is necessary to see that these assessments were not excessive. ≈ Необходимо выяснить, не завышен ли размер налогообложения.
3) мед. определение, установление (напр., сроков беременности) ;
оценка (жизнеспособности)оценка имущества для взимания налогов обложение (налогом) размер налога оценка, мнение, суждение - * of forces оценка сил - what is your * of this state of affairs? как вы оцениваете такое положение вещей?assessment взимание страхового взноса ~ налог ~ обложение;
сумма обложения (налогом) ~ обложение налогом ~ определение ~ определение размера налога ~ оценка ~ налог. оценка ~ оценка имущества для взимания налогов ~ размер налога ~ распределение убытков по общей аварии ~ страх. распределение убытков по общей аварии ~ сбор ~ сумма обложения ~ (амер.) требование об уплате взноса за акции ~ требование об уплате взноса за акции~ of damages оценка ущерба~ of disability оценка нетрудоспособности, установление групы инвалидности~ of real estate оценка недвижимого имущества~ of real property оценка недвижимого имуществаbayesian ~ байесовская оценкаcommercial ~ оценка торговой сделкиenvironmental impact ~ оценка воздействия на окружающую средуestimated ~ оценка имущества для налогообложенияincome ~ налогообложение доходаincome tax ~ оценка подоходного налогаjoint ~ совместная оценкаland ~ обложение налогом на землюloss ~ определение страхового возмещения loss ~ определение убытков loss ~ оценка понесенного ущерба loss ~ оценка потерь loss ~ оценка убытковofficial ~ официальная оценкаpersonal ~ оценка личных качествprehearing ~ оценка до заслушиванияprovisional tax ~ установление временных налоговых ставокpublic ~ государственная оценкаquantitative ~ количественная оценкаrisk ~ оценка степени рискаsupplementary ~ дополнительная оценкаtax ~ налогообложение tax ~ установление налоговых ставокtaxable income ~ установление размера налогооблагаемого доходаБольшой англо-русский и русско-английский словарь > assessment
16 depth
1) глубина; метео горизонт измерения ( в океане)2) высота3) мощность, толщина (пласта; облачности)4) насыщенность ( цвета)•depth of application — гидр. поливная нормаdepth of approach — глубина подводящего руслаdepth of beam — высота( сечения) балкиdepth of bridge floor — строительная высота проезжей части мостаdepth of camber — стрела прогибаdepth of cloud — мощность( толщина) облакаdepth of cut — 1. глубина резания 2. лесн. высота пропилаdepth of drain — глубина осушительного канала; глубина заложения закрытого дренажаdepth of drawbar — сил. глубина погружения лодочкиdepth of guillotine — ширина полосы, отрезаемой на бумагорезальной машинеdepth of impression (of indentation) — глубина отпечатка ( при испытании на твёрдость)depth of modulation — глубина модуляции; коэффициент модуляцииdepth of nitration — глубина азотированного слоя, глубина азотированияdepth of penetration — 1. глубина проникновения 2. глубина заглубления (напр. рыхлителя)depth of runoff — слой стокаdepth of throat — 1. глубина зева ( в станине долбежного станка) 2. полезный вылет ( сварочной машины)-
adjustable recess depth
-
aileron depth
-
amidships depth
-
available depth of reservoir
-
barking depth
-
burial depth
-
case depth
-
channel depth
-
coating depth
-
conjugated depths
-
constructional depth
-
controlling depth
-
convection depth
-
counterbore depth
-
crack depth
-
cutting depth
-
diffusion depth
-
digging depth
-
diver depth
-
drilling depth
-
effective depth
-
etch depth
-
filling depth
-
fine-detail modulation depth
-
fluid bed depth
-
focal depth
-
freeboard depth
-
frost-proof depth
-
full-supply depth
-
gap depth
-
glass metal depth
-
glass depth
-
groove depth
-
hardened case depth
-
hardening depth
-
hearth depth
-
hole depth
-
hydraulic mean depth
-
immersion depth
-
impact depth
-
junction depth
-
knockover depth
-
light penetration depth
-
lockout depth
-
melt depth
-
memory depth
-
midships depth
-
mining depth
-
molded depth
-
navigation depth
-
notch depth
-
Olsen cup depth
-
operating water depth
-
overall depth
-
pattern area depth
-
pit depth
-
priming depth
-
producing depth
-
recording depth
-
registered depth
-
register depth
-
reservoir depth
-
scene depth
-
seam depth
-
setting depth
-
skin depth
-
slag depth
-
snow depth
-
standard depths
-
stockline depth
-
stripping depth
-
structural depth
-
target well depth
-
thermocline depth
-
tonnage depth
-
tread depth
-
true vertical well depth
-
truss depth
-
visual depth
-
wearing depth
-
web depth
-
well contract depth
-
well total depth
-
well total vertical depth17 load
2) нагрузка, усилие || нагружать3) кфт. заряжать5) съём ( стекломассы)6) гидр. наносы8) закладка ( заготовки в приспособление) || закладывать9) хим. вводить ( ингредиенты)11) заправка (напр. ленты) || заправлять (напр. ленту)12) вчт. загрузка (напр. программы) || загружать (напр. программу)•load per unit surface — нагрузка на единицу поверхности (охлаждения, нагрева),to apply load — прикладывать нагрузку;to carry load — нести нагрузку; выдерживать нагрузку;to cast load to side — производить поперечный перекос отвала ( бульдозера);to distribute load — распределять нагрузку;to load eccentrically — нагружать ( элемент) внецентренно, прикладывать нагрузку с эксцентриситетом;to impose load — прикладывать нагрузку;to load in bulk — грузить навалом или насыпью;to resist load — выдерживать нагрузку;to support load — нести нагрузку; выдерживать нагрузку;to sustain load — выдерживать нагрузку;to take up load — воспринимать нагрузку;to load up — нагружать;to load with film — заряжать киноплёнкой-
acceleration shock load
-
active load
-
actual load
-
additional load
-
aerodynamic load
-
air-conditioning load
-
aircraft useful load
-
allowable load
-
alternate load
-
annual maximum load
-
appliance load
-
applied bearing load
-
artificial load
-
assumed load
-
auxiliary load
-
axial load
-
axle load
-
backhaul load
-
balanced load
-
balancing load
-
ball load
-
base load
-
basic load
-
batch load
-
bed load
-
bending load
-
blast load
-
bottom load
-
brake load
-
breaking load
-
buckling load
-
buff load
-
bulk load
-
calculated load
-
capacitance load
-
car load
-
carbon burning load
-
central load
-
characteristic load
-
circulating load of impurities
-
clocked load
-
coaxial dry load
-
coaxial load
-
cold-rolling load
-
collapse load
-
combined load
-
commercial load
-
complete wagon load
-
complex load
-
compressive load
-
compressor load
-
computational load
-
concentrated load
-
condensive load
-
connected load
-
continuous load
-
controllable load
-
cooling load
-
crippling load
-
crush load
-
crushing load
-
current load
-
cutter load
-
cyclic load
-
daily load
-
dead load
-
dead-weight load
-
design load
-
design ultimate load
-
direct-acting load
-
direct load
-
discontinuous load
-
dissipative-wall waveguide load
-
distributed load with linear variation
-
distributed load
-
docking load
-
domestic load
-
down-line load
-
draft end load
-
draft load
-
drawbar load
-
dummy load
-
dust load
-
dwelling load
-
dynamic load
-
earth load
-
earthquake load
-
eccentric load
-
effective load
-
electric heating load
-
electrical load
-
electric load
-
emergency load
-
end load
-
equivalent load
-
even load
-
excessive load
-
excess load
-
explosive load
-
exponential load
-
external load
-
factored load
-
failure load
-
falling load
-
fictitious load
-
fixed load
-
flight load
-
floor load
-
fluctuating load
-
fractional load
-
fracture load
-
frozen load
-
full load
-
gradually applied load
-
gross load
-
ground load
-
guarantee load
-
gust load
-
heat load
-
heating load
-
heat-transfer load
-
high-power load
-
high-resistance load
-
hole load
-
hydraulic thrust load
-
hydrodynamic load
-
hydrostatic load
-
ice load
-
imaginary load
-
impact load
-
imposed load
-
impulsive load
-
impulse load
-
increment load
-
induced docking loads
-
inductance load
-
industrial load
-
industrial steam load
-
inertia load
-
initial program load
-
input load
-
instability load
-
installed load
-
instantaneous load
-
intermittent load
-
ionic load
-
irregular load
-
irregularly distributed load
-
jettisoned load in flight
-
knife-edge load
-
lagging load
-
landing load
-
lane load
-
latent heat load
-
lateral load
-
leading load
-
less-than-car load
-
light load
-
lighting load
-
limit load
-
limit operating load
-
linear load
-
linearly varying load
-
live load
-
low-resistance load
-
lumped load
-
maneuvering load
-
mass load
-
matched load
-
maximum safe load
-
midspan load
-
miscellaneous load
-
mobile load
-
moisture load
-
momentary load
-
movable load
-
multichannel load
-
net load
-
noncentral load
-
noncutting load
-
noninductive load
-
nonlinear load
-
nonreactive load
-
nonreflecting load
-
normal running load
-
occasionally applied load
-
off-clearance load
-
off-peak load of power plant
-
on-peak load
-
operating load
-
optimum load
-
ore load
-
oscillating load
-
oscillatory load
-
out-of-balance load
-
out-of-gage load
-
out-of-length load
-
output load
-
overall load
-
overhauling load
-
overlength load
-
overtolerance load
-
palletized load
-
palletized work load
-
part throttle load
-
partial load
-
part load
-
peak load
-
periodic load
-
permanent load
-
permissible load
-
phantom load
-
piezoelectric load
-
pilot work load
-
plant load
-
plate load
-
point load
-
pollutant load
-
pop-in load
-
power load
-
power system load
-
predetermined maximum cutting load
-
prestressing load
-
program load
-
proof load
-
pulsating load
-
punch through load
-
radial load
-
railway load
-
rated load
-
reactive load
-
real load
-
rectifier load
-
reflecting load
-
refrigeration load
-
repeated load
-
residential load
-
resistance load
-
reverse torque load
-
reversed load
-
rolling load
-
rotating bending load
-
rupturing load
-
safe load
-
salt load
-
Schottky diode load
-
secondary load
-
sediment load
-
seismic load
-
self-mass load
-
sensible heat load
-
service load
-
setting load
-
sewage load
-
shearing load
-
shear load
-
shock load
-
side load
-
single load
-
skip load
-
sleet load
-
sliding load
-
snow load
-
specific load
-
specified load
-
stalling load
-
static load
-
steady load
-
storage load
-
structural load
-
suddenly applied load
-
sudden load
-
superimposed load
-
support load
-
support yield load
-
surcharge load
-
surface load
-
sustained load
-
symmetrical load
-
temperature load
-
tensile load
-
terminal load
-
test load
-
thermal load
-
through load
-
tilting load
-
tool/workpiece load
-
top load
-
torque load
-
torsional load
-
total load
-
traction load
-
tractional load
-
traffic load
-
transistor load
-
traveling load
-
treating load
-
trial load
-
triangular load
-
true load
-
twisting load
-
ultimate load
-
unbalanced load
-
uniaxial load
-
uniform load
-
uniformly distributed load
-
unit load
-
unitized load
-
unmatched load
-
up load
-
useful load
-
variable load
-
vehicular load
-
wafer load
-
water load
-
waveguide load
-
wheel load
-
wind load
-
wing load
-
work load
-
working load
-
yield load18 rate
3) частота4) расход5) норма || нормировать6) тариф || тарифицировать7) степень8) отношение; коэффициент10) оценка || оценивать11) определять; устанавливать; подсчитывать; рассчитывать (напр. мощность, несущую способность)•rates to consumers — тарифы на отпуск (напр. электроэнергии) потребителям-
absolute disintegrate rate
-
absorbed dose rate
-
acceptance rate
-
accident rate
-
adiabatic lapse rate
-
advance rate
-
aging rate
-
allowable leak rate
-
angular rate
-
annual depletion rate
-
application rate
-
area rate
-
arrival rate
-
ascensional rate
-
assessed failure rate
-
attenuation rate
-
autoconvective lapse rate
-
base wage rate
-
baud rate
-
bearer rate
-
beating rate
-
bit rate
-
bit-error rate
-
bit-transfer rate
-
block meter rate
-
block-error rate
-
boiling rate
-
boil-up rate
-
bonus rate
-
break flow rate
-
breeding rate
-
burning rate
-
calling rate
-
capture rate
-
carbonization rate
-
cargo rate
-
carrier-ionization rate
-
casting rate
-
catalyst circulation rate
-
charging rate
-
chipping rate
-
chip rate
-
chopping rate
-
circulation rate
-
class rate
-
climb rate
-
clock rate
-
closed rate
-
closure rate
-
coke rate
-
cold storage rates
-
collision rate
-
combustion rate
-
completion rate
-
concentration rate
-
containment leak rate
-
continuous rate
-
controlled rate
-
convective expansion rate
-
conversion rate
-
conveyance rate
-
cooling rate
-
core heat generation rate
-
corrosion rate
-
counting rate
-
crack growth rate
-
creep rate
-
crosshead rate
-
cure rate
-
cutter wear rate
-
daily consumptive use rate
-
data-transfer rate
-
data rate
-
decay rate
-
decompression rate
-
deflection rate
-
deionization rate
-
delivery rate
-
demand cost rate
-
demand rate
-
deposition rate
-
descent rate
-
development rate
-
deviation rate
-
differential rate
-
differentiated electricity rates
-
diffusion rate
-
directional rate
-
discharge rate
-
disposal rate
-
distance rate
-
dither rate
-
dosage rate
-
downtime rate
-
drainage rate
-
drawing rate
-
drift rate
-
drilling rate
-
droop rate
-
dry adiabatic lapse rate
-
electricity rate
-
electric rate
-
energy fluence rate
-
energy release rate
-
entropy production rate
-
entropy rate
-
erasing rate
-
erosion rate
-
error rate
-
etching rate
-
etch rate
-
evacuation rate
-
evaporating rate
-
excitation rate
-
exposure rate
-
failure rate
-
failure-per-mile rate
-
false alarm rate
-
fatal accident frequency rate
-
fatality rate
-
fault rate
-
feed rate
-
field germination rate
-
field-repetition rate
-
fieldwide rate of recovery
-
film rate
-
filtering rate
-
finishing rate
-
fire-propagation rate
-
firing rate
-
fission rate
-
flat rate
-
flexible rates
-
flicker rate
-
flooding rate
-
flotation rate
-
flour extraction rate
-
flow rate
-
flush production rate
-
flutter rate
-
forced outgage rate
-
frame rate
-
frame-repetition rate
-
freezing rate
-
freight rate
-
freight-all-kinds rates
-
frequency-sweep rate
-
frequency-tuning rate
-
fuel rate
-
functional throughput rate
-
gas leak rate
-
gathering rate
-
generation rate
-
grinding rate
-
growth rate
-
gyro drift rate
-
half-clock rate
-
hardening rate
-
heat absorption rate
-
heat dissipation rate
-
heat generation rate
-
heat rate
-
heat-flow rate
-
heating rate
-
heat-transfer rate
-
hit rate
-
image refresh rate
-
impact wear rate
-
in-commission rate
-
infiltration rate
-
information rate
-
injection rate
-
instantaneous failure rate
-
intermittent rate
-
ionization rate
-
irrigation rate
-
iso-wear rates
-
job rates
-
kerma rate
-
keying rate
-
lapse rate
-
leakage rate
-
linear wear rate
-
line-of-sight rate
-
line-repetition rate
-
liquid efflux rate
-
lubrication rate
-
maintenance rate
-
mass flow rate
-
mass wear rate
-
maximum efficiency rate
-
maximum permissible rate
-
maximum stepping rate
-
medium rate
-
melting rate
-
melt-off rate
-
metal-removal rate
-
modulation rate
-
moist-adiabatic lapse rate
-
NC programmed feed rate
-
negative flow rate
-
nucleation rate
-
Nyquist rate
-
obturation rate
-
off-peak power rate
-
operating rate
-
optimal feed rate
-
outgassing rate
-
output rate
-
overall drilling rate
-
oxidation rate
-
paging rate
-
peak power rate
-
penetration rate
-
percolation rate
-
phase generation rate
-
phase rate
-
picture-taking rate
-
pitch rate
-
plastic strain rate
-
positive flow rate
-
potential rate of evaporation
-
pouring rate
-
power rate
-
precipitation rate
-
predetermined rate
-
predicted failure rate
-
priming rate
-
printout rate
-
print rate
-
production decline rate
-
production rate
-
projection rate
-
proper feed rate
-
protection rate
-
pull rate
-
pulldown rate
-
pulse-recurrence rate
-
pulse rate
-
radiation rate
-
radioactive decay rate
-
range rate
-
rapid air cut feed rate
-
rapid return rate
-
rate of acceleration
-
rate of angular motion
-
rate of attack
-
rate of blowing
-
rate of braking
-
rate of carbon drop
-
rate of convergence
-
rate of crack propagation
-
rate of deformation
-
rate of dilution
-
rate of discharge
-
rate of dive
-
rate of energy input
-
rate of exchange
-
rate of exposure
-
rate of fall
-
rate of film movement
-
rate of gain
-
rate of hole deviation change
-
rate of lancing
-
rate of linkage
-
rate of loading
-
rate of opening
-
rate of plant depreciation
-
rate of pulse rise
-
rate of rainfall
-
rate of rise
-
rate of roll
-
rate of sedimentation
-
rate of shear
-
rate of slope
-
rate of stirring
-
rate of surface runoff
-
rate or carbon oxidation
-
reactivity insertion rate
-
reading rate
-
read rate
-
recovery rate
-
recycle rate
-
reflood rate
-
refresh rate
-
refrigeration rate
-
repetition rate
-
reset rate
-
residential rate
-
respiration rate
-
retail charter rate
-
retail rate
-
retention rate
-
rigidity rate
-
rolling rate
-
runout rate
-
sample rate
-
saturated-adiabatic lapse rate
-
saturation rate
-
scrap generation rate
-
scrap rate
-
secondary creep rate
-
sectorial rate
-
self-discharge rate
-
setting rate
-
settled production rate
-
settling rate
-
signaling rate
-
silicon pulling rate
-
slew rate
-
snowmelt inflow rate
-
solidification rate
-
sparking rate
-
specific commodity rate
-
specific heat flow rate
-
specific rate of flow
-
specific rate of sediment transport
-
specific wear rate
-
spreading rate of jet
-
spring rate
-
squeeze rate
-
standard rate
-
starting rate
-
steam rate
-
stepping rate
-
stock removal rate
-
strain rate
-
stress rate
-
sub-Nyquist rate
-
success rate
-
superadiabatic lapse rate
-
supply rate
-
survival rate
-
sweep rate
-
taking rate
-
tariff rate
-
temperature lapse rate
-
testing rate
-
thermal transfer rate
-
through rate
-
throughput rate
-
time rate of change
-
time rate
-
time-of-day electricity rate
-
time-of-day rate
-
tool-wear rate
-
total mass rate
-
tracking rate
-
traffic flow rate
-
transfer rate
-
transmission rate
-
transport rate
-
turn rate
-
turnover rate
-
twenty-five ampere rate
-
undetected error rate
-
uniform quench rate
-
unit rate
-
unloading rate
-
update rate
-
vaporizing rate
-
vitrification rate
-
voidage rate
-
voltage recovery rate
-
volume erosion rate
-
volume wear rate
-
volumetric flow rate
-
volumetric rate
-
vulcanization rate
-
water application rate
-
water consumption rate
-
water use rate
-
wear rate
-
weft insertion rate
-
weight rate
-
wheel removal rate
-
wholesale charter rate
-
wholesale rate
-
withdrawal rate
-
write writing rate
-
write rate
-
yawing rate
-
yaw rate
-
zero-crossing rate19 resistance
1) сопротивление; сопротивляемость; прочность (см. тж
strength.)2) стойкость, устойчивость3) эл. (активное) сопротивление4) резистор•resistance in waves — сопротивление ( судна) при ходе на волнении;resistance to case — сопротивление относительно корпуса, сопротивление относительно земли;resistance to corrosion fatigue — коррозионно-усталостная прочность;resistance to pit corrosion — сопротивление питтинговой коррозии;resistance to poisoning — стойкость ( катализатора) к отравлению;-
abrasion resistance
-
abrasive wear resistance
-
abrasive resistance
-
ac resistance
-
acid resistance
-
acoustic resistance
-
active resistance
-
aerodynamic resistance
-
aging resistance
-
air resistance
-
alkali resistance
-
antenna resistance
-
antiinterference resistance
-
apparent resistance
-
appendages resistance
-
arc resistance
-
armature resistance
-
ascent resistance
-
asynchronous resistance
-
back resistance
-
bacterial resistance
-
balancing resistance
-
ballast resistance
-
bare-hull resistance
-
barrier-layer resistance
-
bearing resistance
-
bending resistance
-
bleeder resistance
-
block resistance
-
blocking resistance
-
body resistance
-
bond resistance
-
booster resistance
-
bossing resistance
-
brake resistance
-
branch resistance
-
brittle fracture resistance
-
brush resistance
-
buckling resistance
-
bulk resistance
-
burden resistance
-
calibrating resistance
-
calm-water resistance
-
cathode-interface layer resistance
-
cathode-interface resistance
-
channel resistance
-
charging resistance
-
chemical resistance
-
climbing resistance
-
cohesive resistance
-
coil resistance
-
cold resistance
-
collapse resistance
-
commutation wear resistance
-
compressive resistance
-
concussion resistance
-
contact pressure resistance
-
contact resistance
-
corona resistance
-
corrosion resistance
-
coupling resistance
-
crack growth resistance
-
crack initiation resistance
-
crack resistance
-
creep resistance
-
criticalbuild-up resistance
-
crushing resistance
-
cubic resistance
-
curving resistance
-
cutting resistance
-
dark resistance
-
dc copper resistance
-
dc resistance
-
dead resistance
-
decoupling resistance
-
deep-water resistance
-
devitrification resistance
-
dielectric resistance
-
differential resistance
-
diffusion resistance
-
dirtiness resistance
-
discharge resistance
-
displacement resistance
-
distributed resistance
-
drag resistance
-
dynamic resistance
-
earth-connection resistance
-
eddy-making resistance
-
eddy resistance
-
edge tearing resistance
-
effective resistance
-
elastic resistance
-
electrical resistance
-
electrode resistance
-
electrolytic resistance
-
end resistance
-
environmental resistance
-
equivalent resistance
-
erosion resistance
-
erosive wear resistance
-
etch resistance
-
fatigue resistance
-
fault resistance
-
field resistance
-
field-coil resistance
-
filament resistance
-
fire resistance
-
flange resistance
-
flat crush resistance
-
flexing resistance
-
flexural resistance
-
flow resistance
-
folding resistance
-
footing resistance
-
forward resistance
-
fracture extension resistance
-
frame resistance
-
free rolling resistance
-
freeze resistance
-
freeze-thaw resistance
-
freezing resistance
-
friction heat resistance
-
frost resistance
-
fungus resistance
-
glass attack resistance
-
go-and-return resistance
-
grease hardening resistance
-
head resistance
-
heat resistance
-
heat-transfer resistance
-
hf resistance
-
hot-corrosion resistance
-
hot-tear resistance
-
humidity resistance
-
hydraulic resistance
-
hydrodynamic resistance
-
ice resistance
-
impact resistance
-
impulse resistance
-
incremental resistance
-
indentation resistance
-
induced resistance
-
input resistance
-
insertion resistance
-
insulation resistance
-
interface-layer resistance
-
interface resistance
-
intergranular corrosion resistance
-
internal resistance
-
intrinsic corrosion resistance
-
ionic resistance
-
joint resistance
-
junction resistance
-
lateral resistance
-
leadresistance
-
leakage resistance
-
light resistance
-
linear resistance
-
load resistance
-
locomotive resistance
-
loop resistance
-
loss resistance
-
low-frequency resistance
-
lumped resistance
-
magnetic resistance
-
mass-transfer resistance
-
mechanical resistance
-
mildew fungus resistance
-
mildew resistance
-
moisture resistance
-
momentum resistance
-
motional resistance
-
naked-hull resistance
-
negative phase-sequence resistance
-
negative sequence resistance
-
negative resistance
-
net train resistance
-
neutral resistance
-
noise resistance
-
nonlinear resistance
-
normal resistance of superconductor
-
off resistance
-
ohmic resistance
-
oil resistance
-
on resistance
-
optimum linearizing load resistance
-
outflow resistance
-
output resistance
-
overall resistance
-
oxidation resistance
-
parallel resistance
-
parasitie resistance
-
peeling resistance
-
picking resistance
-
plug resistance
-
positive phase-sequence resistance
-
positive sequence resistance
-
pressure resistance
-
preventive resistance
-
puncture resistance
-
pure resistance
-
radiation resistance
-
radio-frequency resistance
-
rail resistance
-
rated resistance
-
rated zero-power resistance
-
real resistance
-
reduced resistance
-
relative wear resistance
-
replica resistance
-
residual resistance
-
resonant resistance
-
reverse resistance
-
rf resistance
-
rolling resistance
-
roughness resistance
-
rough-water resistance
-
rub resistance
-
running resistance
-
sag resistance
-
salt resistance
-
scale resistance
-
score resistance
-
seismic resistance
-
separation resistance
-
series resistance
-
setup resistance
-
shearing resistance
-
sheet resistance
-
shock resistance
-
shrink resistance
-
shunt resistance
-
shunt-breaking resistance
-
skid resistance
-
skirt contact resistance
-
slag resistance
-
sliding resistance
-
slip resistance
-
small-signal resistance
-
snag resistance
-
source resistance
-
spalling resistance
-
specific magnetic resistance
-
specific resistance
-
spray resistance
-
spring resistance
-
stain resistance
-
standard resistance
-
starting resistance
-
static resistance
-
streamline-flow resistance
-
stress crack resistance
-
structure-footing resistance
-
support resistance
-
surface resistance
-
surge resistance
-
switching wear resistance
-
switch-off resistance
-
switch-on resistance
-
takeoff resistance
-
tear resistance
-
temperature resistance
-
terminal resistance
-
thermal contact resistance
-
thermal resistance
-
thermal shock resistance
-
tire rolling resistance
-
tool wear resistance
-
torsional resistance
-
total resistance
-
towing resistance
-
tracking resistance
-
traction resistance
-
train resistance
-
train shunt resistance
-
transient resistance
-
true resistance
-
turning resistance
-
twisting resistance
-
ultimate resistance
-
vapor resistance
-
variable resistance
-
viscous resistance
-
voltage-dependent resistance
-
volume resistance
-
vortex resistance
-
wake traverse resistance
-
water resistance
-
water-contact resistance
-
wave resistance
-
wave-breaking resistance
-
wave-forming resistance
-
wear resistance
-
weather resistance
-
wet skid resistance
-
wetting resistance
-
white-rust resistance
-
wind resistance
-
wrinkle resistance
-
yield resistance
-
zero phase-sequence resistance
-
zero-power resistance20 tolerance
2) допустимая доза (напр. облучения)3) выносливость; стойкость, устойчивость (к какому-л. воздействию); толерантность•tolerance in dam — допуск размеров плотины;tolerance on height — допуск высоты;tolerance on length — допуск длины;tolerance on thickness — допуск толщины;-
acceptance tolerance
-
accumulated tolerance
-
adjustment tolerance
-
aircraft dimension tolerance
-
aircraft production tolerance
-
aircraft rigging tolerance
-
aircraft weight tolerance
-
alignment tolerance
-
alpha tolerance
-
basic tolerance
-
beta tolerance
-
breathing tolerance
-
chemical tolerance
-
close size tolerance
-
close tolerance
-
concentricity tolerance
-
cut angle tolerance
-
design tolerance
-
dimensional tolerance
-
discharge tolerance
-
distortion tolerance
-
dredging tolerance
-
drinking tolerance
-
environmental tolerance
-
fine tolerance
-
fit tolerance
-
form tolerance
-
frequency tolerance
-
gamma tolerance
-
gear-spacing tolerance
-
geometric tolerance
-
gum tolerance
-
harmonic tolerance
-
humidity tolerance
-
immunological tolerance
-
in-line tolerance
-
in-service tolerance
-
lead tolerance
-
lower tolerance
-
machining tolerance
-
maintenance tolerance
-
man-impact tolerance
-
manufacturing tolerance
-
navigation tolerance
-
negative tolerance
-
overall tolerance
-
parameter tolerance
-
pitch tolerance
-
positioning tolerance
-
position tolerance
-
positive tolerance
-
process tolerance
-
radiation tolerance
-
rated tolerance
-
registration tolerance
-
repair tolerance
-
rolling tolerance
-
rough tolerance
-
shrinkage tolerance
-
size tolerance
-
specific tolerance
-
targeted tolerance
-
target tolerance
-
temperature tolerance
-
tube ID tolerance
-
tube OD tolerance
-
tube wall tolerance
-
upper tolerance
-
voltage tolerance
-
wave tolerance
-
wear tolerance
-
weight tolerance
-
Z-axis toleranceСтраницы- 1
- 2
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