-
21 aircraft
aircraft nвоздушное судноabandon an aircraftпокидать воздушное судноabandoned aircraftвоздушное судно, исключенное из реестраaccident to an aircraftпроисшествие с воздушным судномaccommodate an aircraftразмещать воздушное судноactive aircraftэксплуатируемое воздушное судноafter an aircraftдорабатывать конструкцию воздушного суднаageing aircraftизнос воздушного суднаairborne aircraftвоздушное судно, находящееся в воздухеaircraft acceleration factorкоэффициент перегрузки воздушного суднаaircraft acceleration testsиспытания воздушного судна на перегрузкиaircraft accessory gear boxкоробка приводов самолетных агрегатовaircraft ageсрок службы воздушного суднаaircraft alert positionсостояние готовности воздушного судна к вылетуaircraft alternate-stress testsиспытания воздушного судна на переменные нагрузкиaircraft anticollision deviceприбор предупреждения столкновений воздушных судовaircraft assembly jigсборочный стапель воздушного суднаaircraft axisось симметрии воздушного суднаaircraft balance diagramцентровочный график воздушного суднаaircraft basic specificationsосновные технические данные воздушного суднаaircraft bearingпеленг воздушного суднаaircraft behaviorповедение воздушного суднаaircraft blind transmissionпередача воздушного суднаaircraft braking performanceтормозная характеристика воздушного суднаaircraft breakawayстрагивание воздушного суднаaircraft breakdownвесовая классификация воздушного суднаaircraft call signпозывной код воздушного суднаaircraft capacityвместимость воздушного суднаaircraft capacity rangeпредел коммерческой загрузки воздушного суднаaircraft cargo lashingшвартовка груза на воздушном суднеaircraft categoryвид воздушного суднаaircraft category ratingклассификация воздушных судов по типамaircraft center lineосевая линия воздушного суднаaircraft center - of - gravityцентровка воздушного суднаaircraft certificateсертификат воздушного суднаaircraft certificate holderвладелец сертификата на воздушное судноaircraft classificationклассификация воздушных судовaircraft clockбортовой синхронизаторaircraft commanderкомандир воздушного суднаaircraft commissioning testsэксплуатационные испытания воздушного суднаaircraft communication equipmentбортовое связное оборудованиеaircraft companyфирма по производству воздушных судовaircraft componentэлемент конструкции воздушного суднаaircraft containerконтейнер для перевозки грузов и багажа на воздушном суднеaircraft control lossпотеря управляемости воздушного суднаaircraft control marginзапас управляемости воздушного суднаaircraft control systemсистема управления воздушным судномaircraft control transferпередача управления воздушным судномaircraft cost levelсебестоимость воздушного суднаaircraft courseкурс воздушного суднаaircraft customerзаказчик воздушного суднаaircraft deckпол кабины воздушного суднаaircraft decompressionразгерметизация воздушного суднаaircraft defects listведомость дефектов воздушного суднаaircraft deliveryпоставка воздушных судовaircraft depotавиационная базаaircraft designконструкция воздушного суднаaircraft designerавиаконструкторaircraft design loadрасчетный предел нагрузки воздушного суднаaircraft development plantопытная авиационный заводaircraft dimension toleranceдопуск на размеры воздушного суднаaircraft ditchingвынужденная посадка воздушного судна на водуaircraft documentsбортовая документацияaircraft dry leaseаренда воздушного судна без экипажаaircraft dryleaseаренда воздушного судна без экипажаaircraft earthingзаземление воздушного суднаaircraft electrical failureотказ электросистемы воздушного суднаaircraft electric systemэлектросистема воздушного суднаaircraft electrificationосветительное оборудование воздушного суднаaircraft embodyпроводить доработку воздушного суднаaircraft emergencyаварийная ситуация с воздушным судномaircraft emergency locator beaconбортовой аварийный приводной маякaircraft employmentэксплуатация воздушного суднаaircraft empty weightмасса пустого воздушного суднаaircraft endurance testsресурсные испытания воздушного суднаaircraft environmental testиспытание воздушного судна в термобарокамереaircraft equipmentбортовое оборудованиеaircraft equipment overhaulремонт оборудования воздушного суднаaircraft escape chuteаварийный бортовой трап - лотокaircraft evacuation meansсредства эвакуации воздушного суднаaircraft evolutionэволюция воздушного суднаaircraft factoryавиационный заводaircraft fatigue lifeусталостный ресурс воздушного суднаaircraft fire pointочаг пожара на воздушном суднеaircraft first costсебестоимость производства воздушного суднаaircraft fixместоположение воздушного суднаaircraft fixed equipmentбортовое стационарное оборудованиеaircraft fix latitudeширота местонахождения воздушного суднаaircraft fixtureстапель для сборки воздушного суднаaircraft flashзасветка воздушного суднаaircraft fleetпарк воздушных судовaircraft fleet turnoverоборот парка воздушных судовaircraft flight reportполетный лист воздушного суднаaircraft flyingполеты воздушных судовaircraft freightгруз, перевозимый воздушным судномaircraft fuel consumptionрасход топлива воздушным судномaircraft fuel quantityзапас топлива воздушного суднаaircraft fuel supplyподача топлива в систему воздушного суднаaircraft galleyбортовая кухня воздушного суднаaircraft generationпоколение воздушных судовaircraft geometryконтуры воздушного суднаaircraft handlingуправление воздушным судномaircraft hardwareприборное оборудование воздушного суднаaircraft headingкурс воздушного суднаaircraft heaterаэродромный обогреватель воздушного суднаaircraft heating systemсистема обогрева воздушного суднаaircraft heelкрен воздушного суднаaircraft high tension wiringэлектропроводка высокого напряжения на воздушном суднеaircraft hijack protectionзащита воздушного судна от угонаaircraft hoistсамолетный подъемникaircraft hourсамолето-часaircraft hydraulic jackгидроподъемник для воздушного суднаaircraft icingобледенение воздушного суднаaircraft identificationопознавание воздушного суднаaircraft identification systemсистема опознавания воздушного суднаaircraft impactстолкновение воздушного суднаaircraft impact angleугол удара воздушного суднаaircraft in distressвоздушное судно, терпящее бедствиеaircraft in missingвоздушное судно, пропавшее без вестиaircraft in serviceэксплуатируемое воздушное судноaircraft insuranceстрахование воздушного суднаaircraft integrated data systemбортовая комплексная система регистрации данныхaircraft intentional swerveпреднамеренное отклонение воздушного суднаaircraft interchangeобмен воздушными судамиaircraft is considered to be missingвоздушное судно считается пропавшим без вестиaircraft jacking pointместо установки домкрата для подъема воздушного суднаaircraft ladderбортовая лестницаaircraft ladingзагрузка воздушного суднаaircraft landingпосадка воздушного суднаaircraft landing measurement systemсистема измерения посадочных параметров воздушного суднаaircraft lateral inbalanceнарушение поперечной центровки воздушного суднаaircraft layoutкомпоновка воздушного суднаaircraft leadэлектропроводка воздушного суднаaircraft leafletрекламный проспект воздушного суднаaircraft leaseаренда воздушного суднаaircraft leveling pointнивелировочная точка воздушного суднаaircraft lightsбортовые аэронавигационные огниaircraft limit switchконцевой выключатель в системе воздушного суднаaircraft listкрен воздушного суднаaircraft load distributionраспределение загрузки воздушного суднаaircraft load factorкоэффициент загрузки воздушного суднаaircraft loading chartсхема загрузки воздушного суднаaircraft loading diagramсхема загрузки воздушного суднаaircraft loading instructionинструкция по загрузке воздушного суднаaircraft low tension wiringэлектропроводка низкого напряжения на воздушном суднеaircraft maintenance baseавиационная техническая базаaircraft maintenance depotавиационная техническая базаaircraft maintenance divisionцех технического обслуживания воздушных судовaircraft maintenance engineerинженер по техническому обслуживанию воздушных судовaircraft maintenance engineering exhibitionвыставка технического оборудования для обслуживания воздушных судовaircraft maintenance guideруководство по технической эксплуатации воздушного суднаaircraft maintenance performanceэксплуатационная технологичность воздушного суднаaircraft maintenance practiceтехнология технического обслуживания воздушного суднаaircraft maintenance teamбригада технического обслуживания воздушных судовaircraft main viewобщий вид воздушного суднаaircraft manoeuvrabilityманевренность воздушного суднаaircraft manufacturing facilitiesавиационное производственное предприятиеaircraft manufacturing plantавиационный заводaircraft minimaминимум воздушного суднаaircraft mockupмакет воздушного суднаaircraft modelмодель воздушного суднаaircraft movementдвижение воздушного суднаaircraft mushпросадка воздушного суднаaircraft nationality markгосударственный опознавательный знак воздушного суднаaircraft navigation equipmentбортовое навигационное оборудованиеaircraft noise abatement operating proceduresэксплуатационные методы снижения авиационного шумаaircraft noise annoyanceраздражающее воздействие шума от воздушного судaircraft noise certificateсертификат воздушного судна по шумуaircraft noise pollutionвредное воздействие шума от воздушных судовaircraft noise prediction programпрограмма прогнозирования авиационного шумаaircraft nose sectionносовая часть воздушного суднаaircraft observationнаблюдение с борта воздушного суднаaircraft on flightвоздушное судно в полетеaircraft on registerвоздушное судно, занесенное в реестрaircraft operating agencyлетно-эксплуатационное предприятиеaircraft operating expensesэксплуатационные расходы на воздушное судноaircraft operating instructionинструкция по эксплуатации воздушного суднаaircraft operationэксплуатация воздушного суднаaircraft operational empty weightдопустимая посадочная массаaircraft operational rangeэксплуатационная дальность полета воздушного суднаaircraft operational weightмасса снаряженного воздушного судна без пассажировaircraft overhaulремонт воздушного суднаaircraft overhaul plantремонтный авиационный заводaircraft overhaul shopмастерская капитального ремонта воздушных судовaircraft overswingingраскачивание воздушного суднаaircraft parkingпарковка воздушного суднаaircraft parking equipmentоборудование места стоянки воздушного суднаaircraft parking placeместо стоянки воздушного суднаaircraft passenger insuranceстрахование авиапассажировaircraft perfomance limitationsлетно-технические ограниченияaircraft performance characteristicsлетно-технические характеристикиaircraft performancesлетно-технические характеристики воздушного суднаaircraft phantom viewусловно прозрачный вид воздушного суднаaircraft pivotingразворот воздушного суднаaircraft pneumatic systemпневматическая система воздушного суднаaircraft portable equipmentпереносное бортовое оборудованиеaircraft positionотметка местоположения воздушного суднаaircraft position indicatorуказатель положения воздушного суднаaircraft position lineлиния положения воздушного суднаaircraft position reportсообщение о положении воздушного суднаaircraft power reductionуменьшение мощности двигателей воздушного суднаaircraft power supplyбортовой источник электропитанияaircraft productionпроизводство воздушных судовaircraft production break lineлиния технологического разъема воздушного суднаaircraft production inspectionконтроль качества изготовления воздушных судовaircraft prototypeопытный вариант воздушного суднаaircraft provider stateгосударство - поставщик воздушного суднаaircraft rangeдальность полета воздушного суднаaircraft ratingклассификационная отметка воздушного суднаaircraft readinessготовность воздушного суднаaircraft recorderбортовой регистраторaircraft recorder equipmentбортовая контрольно-записывающая аппаратураaircraft recoveryобнаружение и удаление воздушного суднаaircraft recovery dateдата обнаружения пропавшего воздушного суднаaircraft recovery kitкомплект оборудования для удаления воздушного суднаaircraft recovery planплан восстановления воздушного суднаaircraft reference symbolуказатель положения воздушного судна(на шкале навигационного прибора) aircraft registrationрегистрация воздушного суднаaircraft registration markбортовой регистрационный знак воздушного суднаaircraft registry stateгосударство регистрации воздушного суднаaircraft reliabilityнадежность воздушного суднаaircraft removal from serviceснятие воздушного судна с эксплуатацииaircraft rental costsрасходы на аренду воздушного суднаaircraft repair depotбаза ремонта воздушных судовaircraft repair kitтехническая аптечка воздушного суднаaircraft repairmanспециалист по ремонту воздушных судовaircraft repair shopавиаремонтная мастерскаяaircraft requiring assistanceвоздушное судно, нуждающееся в помощиaircraft reserve factorзапас прочности воздушного суднаaircraft responderсамолетный ответчикaircraft retrofitдоработка воздушного суднаaircraft rollкрен воздушного суднаaircraft safe lifeбезопасный срок службы воздушного суднаaircraft safety beaconпроблесковый маяк для предупреждения столкновенияaircraft safety factorуровень безопасности полетов воздушного суднаaircraft salvageэвакуация воздушного судна с места аварииaircraft sanitary controlсанитарный контроль воздушных судовaircrafts batchсерия воздушных судовaircraft seating densityплотность размещения кресел на воздушном суднеaircraft self routingпрокладка маршрута с помощью бортовых средств навигацииaircraft sensitivityуправляемость воздушного суднаaircraft separation assuranceобеспечение эшелонирования полетов воздушных судовaircraft service periodпродолжительность обслуживания воздушного суднаaircraft service truck'sтранспортные средства для обслуживания воздушного суднаaircraft servicingобслуживание воздушного суднаaircraft servicing equipmentоборудование для обслуживания воздушного суднаaircraft servicing installationстационарная установка для обслуживания воздушного суднаaircraft settingпеленгование воздушного суднаaircraft's fileнабор бортовой документацииaircraft shedангар для воздушного суднаaircraft sideборт воздушного суднаaircrafts impingementстолкновение воздушных судовaircraft simulatorтренажер воздушного суднаaircraft skidding dragсопротивление скольжению воздушного суднаaircraft's loading positionместо загрузки воздушного суднаaircraft sound proofingзвукоизоляция воздушного суднаaircraft spacingэшелонирование полетов воздушных судовaircraft spare partзапасные части для воздушного суднаaircraft's parking positionместо стоянки воздушного суднаaircraft speedскорость воздушного суднаaircraft spiral glideпланирование воздушного судна по спиралиaircraft's present positionфактическое положение воздушного суднаaircraft standместо остановки воздушного суднаaircraft standby facilitiesрезервное оборудование воздушного суднаaircraft stand identificationобозначение места остановки воздушного суднаaircraft stand identification signопознавательный знак места стоянки воздушного суднаaircraft stand lead-in lineлиния заруливания воздушного судна на стоянкуaircraft stand markingмаркировка места стоянки воздушного суднаaircraft stand taxilaneлиния руления воздушного судна в зоне стоянкиaircraft status reportдонесение о состоянии парка воздушных судовaircraft step unitбортовой трапaircraft stopостановка воздушного суднаaircraft stopping performanceтормозная характеристика воздушного суднаaircraft storage batteryбортовая аккумуляторная батареяaircraft storage instructionинструкция по консервации и хранению воздушного суднаaircraft structural deformationдеформация конструкции воздушного суднаaircraft structureконструкция воздушного суднаaircraft substantial damageзначительное повреждение суднаaircraft sudden swerveвнезапное отклонение воздушного суднаaircraft supersedeasсписание воздушного суднаaircraft supplierпредприятие - поставщик воздушных судовaircraft surface movement indicatorиндикатор наземного движения воздушных судовaircraft systemбортовая системаaircraft technicianавиационный техникaircraft test dataданные о результатах испытаний воздушного суднаaircraft test stationиспытательная станция воздушных судовaircraft tie-down pointточка швартовки воздушного суднаaircraft tightnessгерметичность воздушного суднаaircraft tool codingмаркировка бортового инструментаaircraft towing pointбуксировочный узел воздушного суднаaircraft trailспутный след воздушного суднаaircraft trimбалансировка воздушного суднаaircraft typeтип воздушного суднаaircraft uncontrollabilityнеуправляемость воздушного суднаaircraft underloadingнеполная загрузка воздушного суднаaircraft unlawful seizureнезаконный захват воздушного суднаaircraft usability factorкоэффициент использования воздушного суднаaircraft useful loadполезная нагрузка воздушного суднаaircraft user stateгосударство - эксплуатант воздушного суднаaircraft ventilation rateстепень вентиляции кабины воздушного суднаaircraft wakeспутная струя за воздушным судномaircraft warning systemсистема предупредительной сигнализации воздушного суднаaircraft warrantyгарантийный срок воздушного суднаaircraft washing plantмоечная установка для воздушных судовaircraft wearout rateстепень износа воздушного суднаaircraft weight categoryвесовая категория воздушного суднаaircraft weight toleranceдопуск на массу воздушного суднаaircraft wet leaseаренда воздушного судна вместе с экипажемaircraft wreckполомка воздушного суднаairodynamically balanced aircraftаэродинамически сбалансированное воздушное судноalign the aircraftустанавливать воздушное судноalign the aircraft with the center lineустанавливать воздушное судно по осиalign the aircraft with the runwayустанавливать воздушное судно по оси ВППall-cargo aircraftгрузовое воздушное судноall-metal aircraftцельнометаллическое воздушное судноall-purpose aircraftмногоцелевое воздушное судноall-weather aircraftвсепогодное воздушное судноall-wing aircraftвоздушное судно схемы летающее крылоambulance aircraftсанитарное воздушное судноamphibian aircraftсамолет - амфибияapproaching aircraftвоздушное судно, совершающее заход на посадкуarriving aircraftприбывающее воздушное судноassociated aircraft systemвспомогательная бортовая система воздушного суднаauthorized aircraftвоздушное судно, имеющее разрешение на полетbalanced aircraftсбалансированное воздушное судноbalance the aircraftбалансировать воздушное судноbaseline aircraftслужебное воздушное судноbaseline aircraft configurationконфигурация базовой модели воздушного суднаbasic aircraftосновной вариант воздушного суднаboard an aircraftподниматься на борт воздушного суднаbring the aircraft backвозвращать воздушное судноbring the aircraft outвыводить воздушное судно из кренаbusiness aircraftслужебное воздушное судноcanard aircraftвоздушное судно схемы уткаcargo aircraftгрузовое служебное судноcause of aircraft troubleпричина неисправности воздушного суднаcharter an aircraftфрахтовать воздушное судноchartered aircraftзафрахтованное воздушное судноcivil aircraftвоздушное судно гражданской авиацииclean aircraftвоздушное судно с убранной механизацией крылаclean the aircraftубирать механизацию крыла воздушного суднаclearance of the aircraftразрешение воздушному суднуcleared aircraftвоздушное судно, получившее разрешениеclear the aircraftдавать разрешение воздушному суднуcombination aircraftвоздушное судно для смешанных перевозокCommittee on Aircraft NoiseКомитет по авиационному шумуcommuter-size aircraftвоздушное судно местных воздушных линийcomplex type of aircraftкомбинированный тип воздушного суднаconsider an aircraft serviceableдопускать воздушное судно к дальнейшей эксплуатацииcontrol the aircraftуправлять воздушным судномconventional takeoff and landing aircraftвоздушное судно обычной схемы взлета и посадкиconvert an aircraftпереоборудовать воздушное судноconvertible aircraftгрузопассажирское воздушное судноcover an aircraft withзачехлять воздушное судноdamage aircraft structureповреждать конструкцию воздушного суднаdamaged aircraftповрежденное воздушное судноdecelerate the aircraft toснижать скорость воздушного судна доdelta-wing aircraftвоздушное судно с треугольным крыломdeparting aircraftвылетающее воздушное судноderived aircraftмодифицированное воздушное судноdisabled aircraftвоздушное судно, выведенное из строяdouble-decker aircraftдвухпалубное воздушное судноease the aircraft onвыравнивать воздушное судноeastbound aircraftвоздушное судно, летящее курсом на востокeffect on an aircraftвлиять на состояние воздушного суднаenable the aircraft toдавать воздушному судну правоendanger the aircraftсоздавать опасность для воздушного суднаengage in aircraft operationэксплуатировать воздушное судноenter the aircraftзаносить воздушное судно в реестрenter the aircraft standзаруливать на место стоянки воздушного суднаentire aircraftукомплектованное воздушное судноenvironmentally attuned aircraftвоздушное судно, удовлетворяющее требованиям сохранения окружающей средыequip an aircraft withоборудовать воздушное судноestimated position of aircraftрасчетное положение воздушного суднаexecutive aircraftадминистративное воздушное судноexperimental aircraftопытный вариант воздушного суднаfeeder aircraftвоздушное судно вспомогательной авиалинииfill an aircraft withразмещать в воздушном суднеfirst-generation aircraftвоздушное судно первого поколенияfit an aircraft withоборудовать воздушное судноfixed-wing aircraftвоздушное судно с неподвижным крыломfly by an aircraftлетать на воздушном суднеfly the aircraft1. пилотировать воздушное судно2. управлять самолетом folding wing aircraftвоздушное судно со складывающимся крыломfollowing aircraftвоздушное судно, идущее следомfollow up the aircraftсопровождать воздушное судноforest patrol aircraftвоздушное судно для патрулирования лесных массивовfreight aircraftгрузовое воздушное судноfull-scalle aircraftполномасштабная модель воздушного суднаgeneral-purpose aircraftвоздушное судно общего назначенияhandy aircraftлегкоуправляемое воздушное судноhead the aircraft into windнаправлять воздушное судно против ветраheavier-than-air aircraftлетательный аппарат тяжелее воздухаheavy aircraftтранспортное воздушное судноhigh-altitude aircraftвоздушное судно для полетов на большой высотеhigh-capacity aircraftвоздушное судно большой вместимостиhigh-speed aircraftскоростное воздушное судноhigh-wing aircraftвоздушное судно с верхним расположением крылаholding aircraftвоздушное судно в зоне ожиданияhold the aircraft on the headingвыдерживать воздушное судно на заданном курсеhospital aircraftсанитарное воздушное судноhouse an aircraftразмещать воздушное судноhypersonic aircraftгиперзвуковое воздушное судноidentify the aircraftопознавать воздушное судноimproperly loaded aircraftвоздушное судно, загруженное не по установленной схемеinbound aircraftприбывающее воздушное судноin-coming aircraftвоздушное судно на подходеinconventional type of aircraftнестандартный тип воздушного суднаin-flight aircraftвоздушное судно в полетеinherent in the aircraftсвойственный воздушному суднуin-service aircraftэксплуатируемое воздушное судноinstall in the aircraftустанавливать на борту воздушного суднаinstall on the aircraftмонтировать на воздушном суднеinterception of civil aircraftперехват гражданского воздушного суднаinterchanged aircraftвоздушное судно по обменуintercharged aircraft agreementсоглашение об обмене воздушными суднамиinternational aircraft standardмеждународный авиационный стандартInternational Council of Aircraft Owner and Pilot AssociationsМеждународный совет ассоциаций владельцев воздушных судов и пилотовintruding aircraftвоздушное судно, создающее опасность столкновенияinward aircraftприбывающее воздушное судноirrepairable aircraftнеремонтопригодное воздушное судноjack an aircraftвывешивать воздушное судно на подъемникахjet aircraftреактивное воздушное судноjoin an aircraftсовершать посадку на борт воздушного суднаkeep clear of the aircraftдержаться на безопасном расстоянии от воздушного суднаkeep the aircraft onвыдерживать воздушное судноknown aircraft damageустановленное повреждение воздушного суднаladen aircraftзагруженное воздушное судноland aircraftсухопутное воздушное судноland the aircraftприземлять воздушное судноlead in the aircraftзаруливать воздушное судноlead out the aircraftвыруливать воздушное судноlease an aircraftарендовать воздушное судноleased aircraftарендованное воздушное судноlessee of an aircraftарендатор воздушного суднаlevel the aircraft outвыравнивать воздушное судноlicensed aircraftлицензированное воздушное судноlift an aircraft onвывешивать воздушное судноlift-fuselage aircraftвоздушное судно с несущим фюзеляжемlight aircraftвоздушное судно небольшой массыlighter-than-air aircraftлетательный аппарат легче воздухаline up the aircraftвыруливать воздушное судно на исполнительный стартlong-bodied aircraftдлиннофюзеляжный самолетlong-distance aircraftвоздушное судно большой дальности полетовlow annoyance aircraftмалошумное воздушное судноlow-wing aircraftвоздушное судно с низким расположением крылаmail-carrying aircraftпочтовое воздушное судноmaintain the aircraft at readiness toдержать воздушное судно готовымmake the aircraft airborneотрывать воздушное судно от землиmaking way aircraftвоздушное судно в полетеmanned aircraftпилотируемое воздушное судноmid-wing aircraftвоздушное судно со средним расположением крылаmissing aircraftпропавшее воздушное судноmodified aircraftмодифицированное воздушное судноmoor the aircraftшвартовать воздушное судноmulticrew aircraftвоздушное судно с экипажем из нескольких человекmultiengined aircraftвоздушное судно с двумя и более двигателямиmultipurpose aircraftмногоцелевое воздушное судноnarrow-body aircraftвоздушное судно с узким фюзеляжемnonnoise certificate aircraftвоздушное судно, не сертифицированное по шумуnose-in aircraft standместо стоянки воздушного судна носом к аэровокзалуnose-out aircraft standместо стоянки воздушного судна хвостом к аэровокзалуon aircraft center lineпо оси воздушного суднаoncoming aircraftвоздушное судно, находящееся на встречном курсеone-engined aircraftвоздушное судно с одним двигателемoperate an aircraftэксплуатировать воздушное судноoperation of aircraftэксплуатация воздушного суднаoriginating aircraftвылетающее воздушное судноoutbound aircraftвылетающее воздушное судноoutdated aircraftустаревшая модель воздушного суднаout-of-balance aircraftнесбалансированное воздушное судноoutward aircraftвылетающее воздушное судноoverweight aircraftперегруженное воздушное судноowner-operated aircraftвоздушное судно, находящееся в эксплуатации владельцаpark an aircraftпарковать воздушное судноpassenger aircraftпассажирское воздушное судноpatrol aircraftпатрульное воздушное судноpiston-engined aircraftвоздушное судно с поршневым двигателемplace the aircraftустанавливать воздушное судноplot the aircraftзасекать воздушное судноpractice aircraftтренировочное воздушное судноpreceeding aircraftвоздушное судно, идущее впередиpreproduction aircraftопытный вариант воздушного суднаpressurized aircraftгерметизированное воздушное судноproduction aircraftсерийный вариант воздушного суднаprofitable aircraftкоммерческое воздушное судноprop-driven aircraftвинтовое воздушное судноproperly identify the aircraftточно опознавать воздушное судноprototype aircraftопытный вариант воздушного суднаpull the aircraft out ofбрать штурвал на себяpush the aircraft backбуксировать воздушное судно хвостом впередpush the aircraft downснижать высоту полета воздушного суднаput the aircraft into productionзапускать воздушное судно в производствоput the aircraft on the courseвыводить воздушное судно на заданный курсput the aircraft overпереводить воздушное судно в горизонтальный полетquiet aircraftбесшумное воздушное судноreceiver aircraftвоздушное судно, дозаправляемое в полетеreduced takeoff and landing aircraftвоздушное судно укороченного взлета и посадкиreequip an aircraftзаменять оборудование воздушного суднаregister the aircraftрегистрировать воздушное судноregular-body aircraftвоздушное судно с фюзеляжем типовой схемыrelease the aircraftпрекращать контроль воздушного суднаremoval of aircraftудаление воздушного суднаremove the aircraftудалять воздушное судноrescue aircraftпоисково-спасательное воздушное судноresearch aircraftисследовательское воздушное судноrestore an aircraftвосстанавливать воздушное судноretirement of aircraftсписание воздушного суднаreturn an aircraft to flyable statusприводить воздушное судно в состояние летной годностиreturn the aircraft to serviceдопускать воздушное судно к дальнейшей эксплуатацииroll in the aircraftвводить воздушное судно в кренroll on the aircraftвыполнять этап пробега воздушного суднаroll out the aircraftвыводить воздушное судно из кренаrotary-wing aircraftвоздушное судно с несущим винтомrotate the aircraftотрывать переднюю опору шасси воздушного суднаsafe handling of an aircraftбезопасное управление воздушным судномschool aircraftучебное воздушное судноsea aircraftгидровариант воздушного суднаsearch and rescue aircraftпоисково-спасательное воздушное судноseparate the aircraftэшелонировать воздушное судноshort-range aircraftвоздушное судно для местный авиалинийshort takeoff and landing aircraftвоздушное судно короткого взлета и посадкиsingle-engined aircraftвоздушное судно с одним двигателемsingle-pilot aircraftвоздушное судно с одним пилотомsingle-seater aircraftодноместное воздушное судноspace the aircraftопределять зону полета воздушного суднаsports aircraftспортивное воздушное судноstandby aircraftрезервное воздушное судноstate aircraftвоздушное судно государственной принадлежностиstate of aircraft manufactureгосударство - изготовитель воздушного суднаstayed afloat aircraftвоздушное судно, оставшееся на плавуsteer the aircraftуправлять воздушным судномstretched aircraftвоздушное судно с удлиненным фюзеляжемsubsonic aircraftдозвуковое воздушное судноsubstantially dameged aircraftсущественно поврежденное воздушное судноsubstitute the aircraftзаменять воздушное судноsupersonic aircraftсверхзвуковое воздушное судноsuspected aircraft damageпредполагаемое повреждение воздушного суднаtailless aircraftвоздушное судно схемы летающее крылоtaxiing aircraftрулящее воздушное судноterminating aircraftвоздушное судно, прибывающее в конечный аэропортtest aircraftиспытываемое воздушное судноthe aircraft under commandуправляемое воздушное судноtoday's aircraftвоздушное судно, отвечающее современным требованиямtopped-up aircraftснаряженное воздушное судноtraining aircraftучебно-тренировочное воздушное судноtransonic aircraftоколозвуковое воздушное судноtransport aircraftтранспортное воздушное судноtrim the aircraftбалансировать воздушное судноturbine-engined aircraftвоздушное судно с газотурбинными двигателямиturbojet aircraftвоздушное судно с турбореактивными двигателямиturboprop aircraftвоздушное судно с турбовинтовыми двигателямиtwin-engined aircraftвоздушное судно с двумя двигателямиtwin-fuselage aircraftдвухфюзеляжное воздушное судноunder command aircraftуправляемое воздушное судноunder way aircraftвоздушное судно, готовое к полетуunladen aircraftразгруженное воздушное судноunlawfully seized aircraftнезаконно захваченное воздушное судноunpressurized aircraftнегерметизированное воздушное судноunstall the aircraftвыводить воздушное судно из сваливания на крылоunstick the aircraftотрывать воздушное судно от землиvend an aircraftпоставлять воздушное судноvertical takeoff and landing aircraftвоздушное судно вертикального взлета и посадкиwarn the aircraftпредупреждать воздушное судноwide-body aircraftширокофюзеляжное воздушное судноwork on the aircraftвыполнять работу на воздушном судне -
22 control
1) управление; регулирование || управлять; регулировать2) контроль || контролировать3) управляющее устройство; устройство управления; регулятор4) профессиональное мастерство, квалификация, техническая квалификация5) pl органы управления•"in control" — "в поле допуска" ( о результатах измерения)
to control closed loop — управлять в замкнутой системе; регулировать в замкнутой системе
- 2-handed controlsto control open loop — управлять в разомкнутой системе; регулировать в разомкнутой системе
- 32-bit CPU control
- acceptance control
- access control
- acknowledge control
- active process control
- adaptable control
- adaptive constraint control
- adaptive control for optimization
- adaptive control
- adaptive feed rate control
- adaptive quality control
- adjustable feed control
- adjustable rotary control
- adjustable speed control
- adjusting control
- adjustment control
- AI control
- air logic control
- analog data distribution and control
- analogical control
- analytical control
- application control
- arrows-on-curves control
- autodepth control
- autofeed control
- automated control of a document management system
- automated technical control
- automatic backlash control
- automatic control
- automatic editing control
- automatic gain control
- automatic gripper control
- automatic level control
- automatic process closed loop control
- automatic remote control
- automatic sensitivity control
- automatic sequence control
- automatic speed control
- automatic stability controls
- auxiliaries control
- balanced controls
- band width control
- bang-bang control
- bang-bang-off control
- basic CNC control
- batch control
- bibliographic control
- bin level control
- boost control
- built-in control
- button control
- cam control
- cam throttle control
- camshaft control
- carriage control
- Cartesian path control
- Cartesian space control
- cascade control
- C-axis spindle control
- cell control
- center control
- central control
- central supervisory control
- centralized control
- centralized electronic control
- central-station control
- changeover control
- chip control
- circumferential register control
- close control
- closed cycle control
- closed loop control
- closed loop machine control
- closed loop manual control
- closed loop numerical control
- closed loop position control
- clutch control
- CNC control
- CNC indexer control
- CNC programmable control
- CNC symbolic conversational control
- CNC/CRT control
- CNC/MDI control
- coarse control
- coded current control
- coded current remote control
- color control
- combination control
- command-line control
- compensatory control
- composition control
- compound control
- computed-current control
- computed-torque control
- computer control
- computer numerical control
- computer process control
- computer-aided measurement and control
- computer-integrated manufacturing control
- computerized control
- computerized numerical control
- computerized process control
- constant surface speed control
- constant value control
- contactless control
- contact-sensing control
- contamination control
- continuous control
- continuous path control
- continuous process control
- contour profile control
- contouring control
- conventional hardware control
- conventional numerical control
- conventional tape control
- convergent control
- conversational control
- conversational MDI control
- coordinate positioning control
- coordinate programmable control
- copymill control
- counter control
- crossed controls
- current control
- cycle control
- dash control
- data link control
- data storage control
- deadman's handle controls
- depth control
- derivative control
- dial-in control
- differential control
- differential gaging control
- differential gain control
- differential temperature control
- digital brushless servo control
- digital control
- digital position control
- digital readout controls
- dimensional control
- direct computer control
- direct control
- direct digital control
- direct numerical control
- direction control
- directional control
- dirt control
- discontinuous control
- discrete control
- discrete event control
- discrete logic controls
- dispatching control
- displacement control
- distance control
- distant control
- distributed control
- distributed numerical control
- distributed zone control
- distribution control
- dog control
- drum control
- dual control
- dual-mode control
- duplex control
- dust control
- dynamic control
- eccentric control
- edge position control
- EDP control
- electrical control
- electrofluidic control
- electromagnetic control
- electronic control
- electronic level control
- electronic speed control
- electronic swivel control
- elevating control
- emergency control
- end-point control
- engineering change control
- engineering control
- entity control
- environmental control
- error control
- error plus error-rate control
- error-free control
- external beam control
- factory-floor control
- false control
- feed control
- feed drive controls
- feedback control
- feed-forward control
- field control
- fine control
- finger-tip control
- firm-wired numerical control
- fixed control
- fixed-feature control
- fixture-and-tool control
- flexible-body control
- floating control
- flow control
- fluid flow control
- follow-up control
- foot pedal control
- force adaptive control
- forecasting compensatory control
- fork control
- four quadrant control
- freely programmable CNC control
- frequency control
- FROG control
- full computer control
- full order control
- full spindle control
- gage measurement control
- gain control
- ganged control
- gap control
- gear control
- generative numerical control
- generic path control
- geometric adaptive control
- graphic numerical control
- group control
- grouped control
- guidance control
- hairbreath control
- hand control
- hand feed control
- hand wheel control
- hand-held controls
- handle-type control
- hand-operated controls
- hardened computer control
- hardwared control
- hardwared numerical control
- heating control
- heterarchical control
- hierarchical control
- high-integrity control
- high-level robot control
- high-low control
- high-low level control
- high-technology control
- horizontal directional control
- humidity control
- hybrid control
- hydraulic control
- I/O control
- immediate postprocess control
- inching control
- in-cycle control
- independent control
- indexer control
- indirect control
- individual control
- industrial processing control
- industrial-style controls
- infinite control
- infinite speed control
- in-process control
- in-process size control
- in-process size diameters control
- input/output control
- integral CNC control
- integral control
- integrated control
- intelligent control
- interacting control
- interconnected controls
- interlinking control
- inventory control
- job control
- jogging control
- joint control
- joystick control
- just-in-time control
- language-based control
- laser health hazards control
- latching control
- lead control
- learning control
- lever control
- lever-operated control
- line motion control
- linear control
- linear path control
- linearity control
- load control
- load-frequency control
- local control
- local-area control
- logic control
- lubricating oil level control
- machine control
- machine programming control
- machine shop control
- macro control
- magnetic control
- magnetic tape control
- main computer control
- malfunction control
- management control
- manual control
- manual data input control
- manual stop control
- manually actuatable controls
- manufacturing change control
- manufacturing control
- master control
- material flow control
- MDI control
- measured response control
- mechanical control
- memory NC control
- memory-type control
- metering control
- metrological control of production field
- microbased control
- microcomputer CNC control
- microcomputer numerical control
- microcomputer-based sequence control
- microprocessor control
- microprocessor numerical control
- microprogrammed control
- microprogramming control
- milling control
- model reference adaptive control
- model-based control
- moisture control
- motion control
- motor control
- motor speed control
- mouse-driven control
- movable control
- multicircuit control
- multidiameter control
- multilevel control
- multimachine tool control
- multiple control
- multiple-processor control
- multiposition control
- multistep control
- multivariable control
- narrow-band proportional control
- navigation control
- NC control
- neural network adaptive control
- noise control
- noncorresponding control
- noninteracting control
- noninterfacing control
- nonreversable control
- nonsimultaneous control
- numerical contouring control
- numerical control
- numerical program control
- odd control
- off-line control
- oligarchical control
- on-board control
- one-axis point-to-point control
- one-dimensional point-to-point control
- on-line control
- on-off control
- open loop control
- open loop manual control
- open loop numerical control
- open-architecture control
- operating control
- operational control
- operator control
- optical pattern tracing control
- optimal control
- optimalizing control
- optimizing control
- oral numerical control
- organoleptic control
- overall control
- overheat control
- override control
- p. b. control
- palm control
- parameter adaptive control
- parameter adjustment control
- partial d.o.f. control
- path control
- pattern control
- pattern tracing control
- PC control
- PC-based control
- peg board control
- pendant control
- pendant-actuated control
- pendant-mounted control
- performance control
- photoelectric control
- physical alignment control
- PIC control
- PID control
- plugboard control
- plug-in control
- pneumatic control
- point-to-point control
- pose-to-pose control
- position/contouring numerical control
- position/force control
- positional control
- positioning control
- positive control
- postprocess quality control
- power adaptive control
- power control
- power feed control
- power-assisted control
- powered control
- power-operated control
- precision control
- predictor control
- preselective control
- preset control
- presetting control
- pressbutton control
- pressure control
- preview control
- process control
- process quality control
- production activity control
- production control
- production result control
- programmable adaptive control
- programmable cam control
- programmable control
- programmable logic adaptive control
- programmable logic control
- programmable machine control
- programmable microprocessor control
- programmable numerical control
- programmable sequence control
- proportional plus derivative control
- proportional plus floating control
- proportional plus integral control
- prototype control
- pulse control
- pulse duration control
- punched-tape control
- purpose-built control
- pushbutton control
- quality control
- radio remote control
- radium control
- rail-elevating control
- ram stroke control
- ram-positioning control
- rapid-traverse controls for the heads
- rate control
- ratio control
- reactive control
- real-time control
- reduced-order control
- register control
- registration control
- relay control
- relay-contactor control
- remote control
- remote program control
- remote switching control
- remote valve control
- remote-dispatch control
- resistance control
- resolved motion rate control
- retarded control
- reversal control
- revolution control
- rigid-body control
- robot control
- robot perimeter control
- robot teach control
- rod control
- safety control
- sampled-data control
- sampling control
- schedule control
- SCR's control
- second derivative control
- selective control
- selectivity control
- self-acting control
- self-adaptive control
- self-adjusting control
- self-aligning control
- self-operated control
- self-optimizing control
- self-programming microprocessor control
- semi-automatic control
- sensitivity control
- sensor-based control
- sequence control
- sequence-type control
- sequential control
- series-parallel control
- servo control
- servo speed control
- servomotor control
- servo-operated control
- set value control
- shaft speed control
- shape control
- shift control
- shop control
- shower and high-pressure oil temperature control
- shut off control
- sight control
- sign control
- single variable control
- single-flank control
- single-lever control
- size control
- slide control
- smooth control
- software-based NC control
- softwared numerical control
- solid-state logic control
- space-follow-up control
- speed control
- stabilizing control
- stable control
- standalone control
- start controls
- static control
- station control
- statistical quality control
- steering control
- step-by-step control
- stepless control
- stepped control
- stick control
- stock control
- stop controls
- stop-point control
- storage assignment control
- straight cut control
- straight line control
- stroke control
- stroke length control
- supervisor production control
- supervisory control
- swarf control
- switch control
- symbolic control
- synchronous data link control
- table control
- tap-depth controls
- tape control
- tape loop control
- teach controls
- temperature control
- temperature-humidity air control
- template control
- tension control
- test control
- thermal control
- thermostatic control
- three-axis contouring control
- three-axis point-to-point control
- three-axis tape control
- three-mode control
- three-position control
- throttle control
- thumbwheel control
- time control
- time cycle control
- time optimal control
- time variable control
- time-critical control
- time-proportional control
- timing control
- token-passing access control
- tool life control
- tool run-time control
- torque control
- total quality control
- touch-panel NC control
- touch-screen control
- tracer control
- tracer numerical control
- trajectory control
- triac control
- trip-dog control
- TRS/rate control
- tuning control
- turnstile control
- two-axis contouring control
- two-axis point-to-point control
- two-dimension control
- two-hand controls
- two-position control
- two-position differential gap control
- two-step control
- undamped control
- user-adjustable override controls
- user-programmable NC control
- variable flow control
- variable speed control
- variety control
- varying voltage control
- velocity-based look-ahead control
- vise control
- vision responsive control
- visual control
- vocabulary control
- vocal CNC control
- vocal numerical control
- voltage control
- warehouse control
- washdown control
- water-supply control
- welding control
- wheel control
- wide-band control
- zero set control
- zoned track controlEnglish-Russian dictionary of mechanical engineering and automation > control
-
23 development
1) развитие; рост (предприятия)2) изменение; тенденция (в экономике)3) хозяйственное освоение (природных ресурсов)4) опытно-конструкторская работа, разработка5) строительство; застройка; стройка; сооружение6) подготовка к эксплуатации, подготовительные работы7) мат. вывод (формулы) -
24 design
1. n1) план, проект2) чертеж, эскиз; конструкция3) художественное оформление; дизайн
- advertisement design
- advertising design
- approved design
- artistic design
- basic design
- civil engineering design
- computer design
- computer-aided design
- conceptual design
- conventional design
- custom design
- customer design
- economic design
- economical design
- engineering design
- equipment design
- experimental design
- form design
- graphic design
- hardware design
- individual design
- industrial design
- item design
- optimum design
- panel design
- patented design
- preliminary design
- product design
- prototype design
- questionnaire design
- registered design
- revised design
- sample design
- sketch design
- standard design
- survey design
- technical design
- type design
- unique design
- design of an exhibition
- design of a machine
- design of a pavilion
- design of sampling inquiry
- design of statistical inquiry
- design to characteristics
- design to cost
- design and development
- approve a design
- build from a standard design
- develop a design
- improve a design
- make designs
- refine a design
- work out a design2. v1) планировать, проектировать2) проектировать, разрабатыватьEnglish-russian dctionary of contemporary Economics > design
-
25 design
1) конструкция; проект; план2) проектирование, конструирование3) расчёт; определение размеров4) конструктивный вариант, конструктивное решение5) художественное моделирование, художественное оформление6) проектировать; конструировать•- design of concrete mix - design of detailed planning - design of mixture - design of reinforced concrete frame building - alternate design - approved design - architectural design - aseismic design - balanced design - barrier-free design - bridge design - building design - cantilever design - civil-engineering design - codes of structural design - computer-aided design - concrete design - contract design - contractor design - curvature design - custom design - detailed contract design - detailed design stage - draft design - engineering design - environmental design - experimental design - fail-safe design - full-size design - further-edge design of cross section - housing development design - human settlement design - hydraulic design - individual design - industrial design - intelligent design - interactive design - landscape design - lateral-force design - limit design - mix design - mock-up method of design - modular design - multistage design work - pavement design - pilot design - plastic design - point design - preliminary design - probabalistic design - project design - prototype design - regional planning design - research design - seismic design - single-stage design work - sprung arch design - standard design - standardized design - step-by-step design - structural design - structural steel design - thermal design - town planning design - traffic island design - two-stage design work - type design - typical design - ultimate load design - urban design* * *1. конструкция2. план, замысел; проект, проектное решение3. чертёж, эскиз4. проектирование; расчёт5. дизайн || проектировать; рассчитыватьdesign on empirical basis — эмпирический расчёт, расчёт на эмпирической основе
- design of stiffened compression flangesdesign to limit state theory — расчёт, основанный на гипотезе предельных состояний; расчёт по предельным состояниям
- design of structural members
- design of structural steel
- design of structures
- design of welds
- allowable stress design
- alternate design
- architectural design
- basic design
- beam design
- building design
- city design
- civic design
- composite design
- computer-aided design
- concrete mix design for pumping
- construction joint design
- cost-efficient design
- critical-load design
- elastic design
- environmental design
- experimental design
- final design
- form design
- frame design
- frost capacity design
- fully rigid basis design
- geometric highway design
- hydraulic design
- industrial design
- integrated environmental design
- landscape design
- lateral-force design
- limit design
- limit-load design
- limit-state design
- load factor design
- maximum load design
- methods design
- mix design
- mix design with fly ash
- modified structural design
- modular design
- one-off design
- original design
- outline design
- pavement design
- plastic design
- plastic limit design
- post and lintel design
- probabilistic design
- schematic design
- seismic design
- semirigid design
- shearing design
- shear design
- site design
- stable design
- standard design
- steel design
- structural design
- structural timber design
- tender design
- town-building design
- trial design
- tubular design
- ultimate load design
- ultimate-strength design
- unified design
- work design -
26 Booth, Hubert Cecil
SUBJECT AREA: Civil engineering, Domestic appliances and interiors, Mechanical, pneumatic and hydraulic engineering, Ports and shipping[br]b. 1871 Gloucester, England d. 1955[br]English mechanical, civil and construction engineer best remembered as the inventor of the vacuum cleaner.[br]As an engineer Booth contributed to the design of engines for Royal Navy battleships, designed and supervised the erection of a number of great wheels (in Blackpool, Vienna and Paris) and later designed factories and bridges.In 1900 he attended a demonstration, at St Paneras Station in London, of a new form of railway carriage cleaner that was supposed to blow the dirt into a container. It was not a very successful experiment and Booth, having considered the problem carefully, decided that sucking might be better than blowing. He tried out his idea by placing a piece of damp cloth over an upholstered armchair. When he sucked air by mouth through his cloth the dirt upon it was tangible proof of his theory.Various attempts were being made at this time, especially in America, to find a successful cleaner of carpets and upholstery. Booth produced the first truly satisfactory machine, which he patented in 1901, and coined the term "vacuum cleaner". He formed the Vacuum Cleaner Co. (later to become Goblin BVC Ltd) and began to manufacture his machines. For some years the company provided a cleaning service to town houses, using a large and costly vacuum cleaner (the first model cost £350). Painted scarlet, it measured 54×10×42 in. (137×25×110 cm) and was powered by a petrol-driven 5 hp piston engine. It was transported through the streets on a horse-driven van and was handled by a team of operators who parked outside the house to be cleaned. With the aid of several hundred feet of flexible hose extending from the cleaner through the windows into all the rooms, the machine sucked the dirt of decades from the carpets; at the first cleaning the weight of many such carpets was reduced by 50 per cent as the dirt was sucked away.Many attempts were made in Europe and America to produce a smaller and less expensive machine. Booth himself designed the chief British model in 1906, the Trolley- Vac, which was wheeled around the house on a trolley. Still elaborate, expensive and heavy, this machine could, however, be operated inside a room and was powered from an electric light fitting. It consisted of a sophisticated electric motor and a belt-driven rotary vacuum pump. Various hoses and fitments made possible the cleaning of many different surfaces and the dust was trapped in a cloth filter within a small metal canister. It was a superb vacuum cleaner but cost 35 guineas and weighed a hundredweight (50 kg), so it was difficult to take upstairs.Various alternative machines that were cheaper and lighter were devised, but none was truly efficient until a prototype that married a small electric motor to the machine was produced in 1907 in America.[br]Further ReadingThe Story of the World's First Vacuum Cleaner, Leatherhead: BSR (Housewares) Ltd. See also Hoover, William Henry.DY -
27 Brown, Andrew
SUBJECT AREA: Ports and shipping[br]b. October 1825 Glasgow, Scotlandd. 6 May 1907 Renfrew, Scotland[br]Scottish engineer and specialist shipbuilder, dredge-plant authority and supplier.[br]Brown commenced his apprenticeship on the River Clyde in the late 1830s, working for some of the most famous marine engineering companies and ultimately with the Caledonian Railway Company. In 1850 he joined the shipyard of A. \& J.Inglis Ltd of Partick as Engineering Manager; during his ten years there he pioneered the fitting of link-motion valve gear to marine engines. Other interesting engines were built, all ahead of their time, including a three-cylinder direct-acting steam engine.His real life's work commenced in 1860 when he entered into partnership with the Renfrew shipbuilder William Simons. Within one year he had designed the fast Clyde steamer Rothesay Castle, a ship less than 200 ft (61 m) long, yet which steamed at c.20 knots and subsequently became a notable American Civil War blockade runner. At this time the company also built the world's first sailing ship with wire-rope rigging. Within a few years of joining the shipyard on the Cart (a tributary of the Clyde), he had designed the first self-propelled hopper barges built in the United Kingdom. He then went on to design, patent and supervise the building of hopper dredges, bucket ladder dredges and sand dredges, which by the end of the century had capacity of 10,000 tons per hour. In 1895 they built an enclosed hopper-type ship which was the prototype of all subsequent sewage-dumping vessels. Typical of his inventions was the double-ended screw-elevating deck ferry, a ship of particular value in areas where there is high tidal range. Examples of this design are still to be found in many seaports of the world. Brown ultimately became Chairman of Simons shipyard, and in his later years took an active part in civic affairs, serving for fifteen years as Provost of Renfrew. His influence in establishing Renfrew as one of the world's centres of excellence in dredge design and building was considerable, and he was instrumental in bringing several hundred ship contracts of a specialist nature to the River Clyde.[br]Principal Honours and DistinctionsVice-President, Institution of Engineers and Shipbuilders in Scotland.BibliographyA Century of Shipbuilding 1810 to 1910, Renfrew: Wm Simons.Further ReadingF.M.Walker, 1984, Song of the Clyde. A History of Clyde Shipbuilding, Cambridge.FMW -
28 Locke, Joseph
[br]b. 9 August 1805 Attercliffe, Yorkshire, Englandd. 18 September 1860 Moffat, Scotland[br]English civil engineer who built many important early main-line railways.[br]Joseph Locke was the son of a colliery viewer who had known George Stephenson in Northumberland before moving to Yorkshire: Locke himself became a pupil of Stephenson in 1823. He worked with Robert Stephenson at Robert Stephenson \& Co.'s locomotive works and surveyed railways, including the Leeds \& Selby and the Canterbury \& Whitstable, for George Stephenson.When George Stephenson was appointed Chief Engineer for construction of the Liverpool \& Manchester Railway in 1826, the first resident engineer whom he appointed to work under him was Locke, who took a prominent part in promoting traction by locomotives rather than by fixed engines with cable haulage. The pupil eventually excelled the master and in 1835 Locke was appointed in place of Stephenson as Chief Engineer for construction of the Grand Junction Railway. He introduced double-headed rails carried in chairs on wooden sleepers, the prototype of the bullhead track that became standard on British railways for more than a century. By preparing the most detailed specifications, Locke was able to estimate the cost of the railway much more accurately than was usual at that time, and it was built at a cost close to the estimate; this made his name. He became Engineer to the London \& Southampton Railway and completed the Sheffield, Ashton-under-Lyme \& Manchester Railway, including the 3-mile (3.8 km) Woodhead Tunnel, which had been started by Charles Vignoles. He was subsequently responsible for many British main lines, including those of the companies that extended the West Coast Route northwards from Preston to Scotland. He was also Engineer to important early main lines in France, notably that from Paris to Rouen and its extension to Le Havre, and in Spain and Holland. In 1847 Locke was elected MP for Honiton.Locke appreciated early in his career that steam locomotives able to operate over gradients steeper than at first thought practicable would be developed. Overall his monument is not great individual works of engineering, such as the famous bridges of his close contemporaries Robert Stephenson and I.K. Brunel, but a series of lines built economically but soundly through rugged country without such works; for example, the line over Shap, Cumbria.[br]Principal Honours and DistinctionsOfficier de la Légion d'honneur, France. FRS. President, Institution of Civil Engineers 1858–9.Further ReadingObituary, 1861, Minutes of Proceedings of the Institution of Civil Engineers 20. L.T.C.Rolt, 1962, Great Engineers, London: G. Bell \& Sons, ch. 6.Industrial Heritage, 1991, Vol. 9(2):9.See also: Brassey, ThomasPJGR -
29 Murdock (Murdoch), William
[br]b. 21 August 1754 Cumnock, Ayrshire, Scotlandd. 15 November 1839 Handsworth, Birmingham, England[br]Scottish engineer and inventor, pioneer in coal-gas production.[br]He was the third child and the eldest of three boys born to John Murdoch and Anna Bruce. His father, a millwright and joiner, spelled his name Murdock on moving to England. He was educated for some years at Old Cumnock Parish School and in 1777, with his father, he built a "wooden horse", supposed to have been a form of cycle. In 1777 he set out for the Soho manufactory of Boulton \& Watt, where he quickly found employment, Boulton supposedly being impressed by the lad's hat. This was oval and made of wood, and young William had turned it himself on a lathe of his own manufacture. Murdock quickly became Boulton \& Watt's representative in Cornwall, where there was a flourishing demand for steam-engines. He lived at Redruth during this period.It is said that a number of the inventions generally ascribed to James Watt are in fact as much due to Murdock as to Watt. Examples are the piston and slide valve and the sun-and-planet gearing. A number of other inventions are attributed to Murdock alone: typical of these is the oscillating cylinder engine which obviated the need for an overhead beam.In about 1784 he planned a steam-driven road carriage of which he made a working model. He also planned a high-pressure non-condensing engine. The model carriage was demonstrated before Murdock's friends and travelled at a speed of 6–8 mph (10–13 km/h). Boulton and Watt were both antagonistic to their employees' developing independent inventions, and when in 1786 Murdock set out with his model for the Patent Office, having received no reply to a letter he had sent to Watt, Boulton intercepted him on the open road near Exeter and dissuaded him from going any further.In 1785 he married Mary Painter, daughter of a mine captain. She bore him four children, two of whom died in infancy, those surviving eventually joining their father at the Soho Works. Murdock was a great believer in pneumatic power: he had a pneumatic bell-push at Sycamore House, his home near Soho. The pattern-makers lathe at the Soho Works worked for thirty-five years from an air motor. He also conceived the idea of a vacuum piston engine to exhaust a pipe, later developed by the London Pneumatic Despatch Company's railway and the forerunner of the atmospheric railway.Another field in which Murdock was a pioneer was the gas industry. In 1791, in Redruth, he was experimenting with different feedstocks in his home-cum-office in Cross Street: of wood, peat and coal, he preferred the last. He designed and built in the backyard of his house a prototype generator, washer, storage and distribution plant, and publicized the efficiency of coal gas as an illuminant by using it to light his own home. In 1794 or 1795 he informed Boulton and Watt of his experimental work and of its success, suggesting that a patent should be applied for. James Watt Junior was now in the firm and was against patenting the idea since they had had so much trouble with previous patents and had been involved in so much litigation. He refused Murdock's request and for a short time Murdock left the firm to go home to his father's mill. Boulton \& Watt soon recognized the loss of a valuable servant and, in a short time, he was again employed at Soho, now as Engineer and Superintendent at the increased salary of £300 per year plus a 1 per cent commission. From this income, he left £14,000 when he died in 1839.In 1798 the workshops of Boulton and Watt were permanently lit by gas, starting with the foundry building. The 180 ft (55 m) façade of the Soho works was illuminated by gas for the Peace of Paris in June 1814. By 1804, Murdock had brought his apparatus to a point where Boulton \& Watt were able to canvas for orders. Murdock continued with the company after the death of James Watt in 1819, but retired in 1830 and continued to live at Sycamore House, Handsworth, near Birmingham.[br]Principal Honours and DistinctionsRoyal Society Rumford Gold Medal 1808.Further ReadingS.Smiles, 1861, Lives of the Engineers, Vol. IV: Boulton and Watt, London: John Murray.H.W.Dickinson and R.Jenkins, 1927, James Watt and the Steam Engine, Oxford: Clarendon Press.J.A.McCash, 1966, "William Murdoch. Faithful servant" in E.G.Semler (ed.), The Great Masters. Engineering Heritage, Vol. II, London: Institution of Mechanical Engineers/Heinemann.IMcNBiographical history of technology > Murdock (Murdoch), William
-
30 Shaw, Percy
[br]b. 1889 Yorkshire, England d. 1975[br]English inventor of the "catseye" reflecting roadstud.[br]Little is known of Shaw's youth, but in the 1930s he was running a comparatively successful business repairing roads. One evening in 1933, he was driving to his home in Halifax, West Yorkshire; it was late, dark and foggy and only the reflection of his headlights from the tram-tracks guided him and kept him on the road. He decided to find or make an alternative to tramlines, which were not universal and by that time were being taken up as trams were being replaced with diesel buses.Shaw needed a place to work and bought the old Boothtown Mansion, a cloth-merchant's house built in the mid-eighteenth century. There he devoted himself to the production of a prototype of the reflecting roadstud, inspired by the reflective nature of a cat's eyes. Shaw's design consisted of a prism backed by an aluminium mirror, set in pairs in a rubber casing; when traffic passed over the stud, the prisms would be wiped clean as the casing was depressed. In 1934, Shaw obtained permission from the county surveyor to lay, at his own expense, a short stretch of catseyes on a main highway near his home: fifty were laid at Brightlington cross-roads, an accident blackspot near Bradford. This was inspected by a number of surveyors in 1936. The first order for catseyes had already been placed in 1935, for a pedestrian crossing in Baldon, Yorkshire. There were alternative designs in existence, particularly in France, and in 1937 the Ministry of Transport laid an 8 km (5 mile) stretch in Oxfordshire with sample lengths of different types of studs. After two years, most of them had fractured, become displaced or ceased to reflect; only the product of Shaw's company, Reflecting Roadstuds Ltd, was still in perfect condition. The outbreak of the Second World War brought blackout regulations, which caused a great boost to sales of reflecting roadstuds; orders reached some 40,000 per week. Production was limited, however, due to the shortage of rubber supplies after the Japanese overran South-East Asia; until the end of the war, only about 12,000 catseyes were produced a year.Over fifty million catseyes have been installed in Britain, where on average there are about two hundred and fifty catseyes in each kilometre of road, if laid in a single line. The success of Shaw's invention brought him great wealth, although he continued to live in the same house, without curtains—which obstructed his view—or carpets—which harboured odours and germs. He had three Rolls-Royce cars, and four television sets which were permanently switched on while he was at home, each tuned to a different channel.[br]Principal Honours and DistinctionsOBE 1965.Further ReadingE.de Bono (ed.), 1979, Eureka, London: Thames \& Hudson."Percy's bright idea", En Route (the magazine of the Caravan Club), reprinted in The Police Review, 23 March 1983.IMcN -
31 Stephenson, Robert
[br]b. 16 October 1803 Willington Quay, Northumberland, Englandd. 12 October 1859 London, England[br]English engineer who built the locomotive Rocket and constructed many important early trunk railways.[br]Robert Stephenson's father was George Stephenson, who ensured that his son was educated to obtain the theoretical knowledge he lacked himself. In 1821 Robert Stephenson assisted his father in his survey of the Stockton \& Darlington Railway and in 1822 he assisted William James in the first survey of the Liverpool \& Manchester Railway. He then went to Edinburgh University for six months, and the following year Robert Stephenson \& Co. was named after him as Managing Partner when it was formed by himself, his father and others. The firm was to build stationary engines, locomotives and railway rolling stock; in its early years it also built paper-making machinery and did general engineering.In 1824, however, Robert Stephenson accepted, perhaps in reaction to an excess of parental control, an invitation by a group of London speculators called the Colombian Mining Association to lead an expedition to South America to use steam power to reopen gold and silver mines. He subsequently visited North America before returning to England in 1827 to rejoin his father as an equal and again take charge of Robert Stephenson \& Co. There he set about altering the design of steam locomotives to improve both their riding and their steam-generating capacity. Lancashire Witch, completed in July 1828, was the first locomotive mounted on steel springs and had twin furnace tubes through the boiler to produce a large heating surface. Later that year Robert Stephenson \& Co. supplied the Stockton \& Darlington Railway with a wagon, mounted for the first time on springs and with outside bearings. It was to be the prototype of the standard British railway wagon. Between April and September 1829 Robert Stephenson built, not without difficulty, a multi-tubular boiler, as suggested by Henry Booth to George Stephenson, and incorporated it into the locomotive Rocket which the three men entered in the Liverpool \& Manchester Railway's Rainhill Trials in October. Rocket, was outstandingly successful and demonstrated that the long-distance steam railway was practicable.Robert Stephenson continued to develop the locomotive. Northumbrian, built in 1830, had for the first time, a smokebox at the front of the boiler and also the firebox built integrally with the rear of the boiler. Then in Planet, built later the same year, he adopted a layout for the working parts used earlier by steam road-coach pioneer Goldsworthy Gurney, placing the cylinders, for the first time, in a nearly horizontal position beneath the smokebox, with the connecting rods driving a cranked axle. He had evolved the definitive form for the steam locomotive.Also in 1830, Robert Stephenson surveyed the London \& Birmingham Railway, which was authorized by Act of Parliament in 1833. Stephenson became Engineer for construction of the 112-mile (180 km) railway, probably at that date the greatest task ever undertaken in of civil engineering. In this he was greatly assisted by G.P.Bidder, who as a child prodigy had been known as "The Calculating Boy", and the two men were to be associated in many subsequent projects. On the London \& Birmingham Railway there were long and deep cuttings to be excavated and difficult tunnels to be bored, notoriously at Kilsby. The line was opened in 1838.In 1837 Stephenson provided facilities for W.F. Cooke to make an experimental electrictelegraph installation at London Euston. The directors of the London \& Birmingham Railway company, however, did not accept his recommendation that they should adopt the electric telegraph and it was left to I.K. Brunel to instigate the first permanent installation, alongside the Great Western Railway. After Cooke formed the Electric Telegraph Company, Stephenson became a shareholder and was Chairman during 1857–8.Earlier, in the 1830s, Robert Stephenson assisted his father in advising on railways in Belgium and came to be increasingly in demand as a consultant. In 1840, however, he was almost ruined financially as a result of the collapse of the Stanhope \& Tyne Rail Road; in return for acting as Engineer-in-Chief he had unwisely accepted shares, with unlimited liability, instead of a fee.During the late 1840s Stephenson's greatest achievements were the design and construction of four great bridges, as part of railways for which he was responsible. The High Level Bridge over the Tyne at Newcastle and the Royal Border Bridge over the Tweed at Berwick were the links needed to complete the East Coast Route from London to Scotland. For the Chester \& Holyhead Railway to cross the Menai Strait, a bridge with spans as long-as 460 ft (140 m) was needed: Stephenson designed them as wrought-iron tubes of rectangular cross-section, through which the trains would pass, and eventually joined the spans together into a tube 1,511 ft (460 m) long from shore to shore. Extensive testing was done beforehand by shipbuilder William Fairbairn to prove the method, and as a preliminary it was first used for a 400 ft (122 m) span bridge at Conway.In 1847 Robert Stephenson was elected MP for Whitby, a position he held until his death, and he was one of the exhibition commissioners for the Great Exhibition of 1851. In the early 1850s he was Engineer-in-Chief for the Norwegian Trunk Railway, the first railway in Norway, and he also built the Alexandria \& Cairo Railway, the first railway in Africa. This included two tubular bridges with the railway running on top of the tubes. The railway was extended to Suez in 1858 and for several years provided a link in the route from Britain to India, until superseded by the Suez Canal, which Stephenson had opposed in Parliament. The greatest of all his tubular bridges was the Victoria Bridge across the River St Lawrence at Montreal: after inspecting the site in 1852 he was appointed Engineer-in-Chief for the bridge, which was 1 1/2 miles (2 km) long and was designed in his London offices. Sadly he, like Brunel, died young from self-imposed overwork, before the bridge was completed in 1859.[br]Principal Honours and DistinctionsFRS 1849. President, Institution of Mechanical Engineers 1849. President, Institution of Civil Engineers 1856. Order of St Olaf (Norway). Order of Leopold (Belgium). Like his father, Robert Stephenson refused a knighthood.Further ReadingL.T.C.Rolt, 1960, George and Robert Stephenson, London: Longman (a good modern biography).J.C.Jeaffreson, 1864, The Life of Robert Stephenson, London: Longman (the standard nine-teenth-century biography).M.R.Bailey, 1979, "Robert Stephenson \& Co. 1823–1829", Transactions of the Newcomen Society 50 (provides details of the early products of that company).J.Kieve, 1973, The Electric Telegraph, Newton Abbot: David \& Charles.PJGR -
32 EAP
1) Военный термин: Emergency Action Procedures, Enterprise Architecture Plan, effective air path, emergency action procedure, experimental aircraft program, experimental aircraft prototype, Economically Active Population2) Техника: Event Assessment Panel, experimental activity proposal3) Религия: Evidences of Answered Prayer4) Бухгалтерия: Estimated Adjusted Price5) Страхование: estimated annual premium6) Оптика: electro-absorption avalanche photodiode7) Сокращение: Electronic Assembly Plant, Emergency Action Plan (2004), Emergency Action Plan, Experimental Aircraft Programme8) Университет: Education Abroad Program, English For Academic Purposes9) Физиология: Eber Associated Protein, Estrus Associated Protein10) Вычислительная техника: Extensible Authentication Protocol (Cisco, Verschluesselung, RADIUS, WPA)11) Иммунология: Equine Assisted Psychotherapy12) Связь: Extensible Authentication Protocol13) Космонавтика: Environment Assessment Programme (UNEP)14) Транспорт: Employee Assistance Program15) Деловая лексика: Employee Assistance Plan, Enterprise Analytic Portal, employee assistance programme (This gives your employees telephone access to confidential advice and face-to-face counselling if necessary, and protects the business from personal injury claims.)16) Нефтегазовая техника Equivalent Air Pressure17) Образование: Early Access Program, Emea Academic Program, Employee Alcoholism Program18) Сетевые технологии: Enhanced Authentication Protocol, Enterprise Architecture Planning, открытый протокол аутентификации (extensible authentication protocol)19) ЕБРР: environmental action plan20) Электротехника: emergency action program21) Имена и фамилии: Edgar Allen Poe, Elvis Aaron Presley22) Должность: Executive Administrative And Professional23) Правительство: Engineering Access Permit -
33 PEB
1) Американизм: Personnel Evaluation Board, Plant and Environmental Biotechnology, Presidential Emergency Board2) Военный термин: Physical Evaluation Board3) Техника: plain end beveled, pressurized fluidized bed4) Архитектура: Pre Engineered Building5) Металлургия: сборное металлическое здание6) Музыка: Percussion Expansion Board7) Сокращение: Propulsion Examining Board (US Navy), Party Election Broadcast8) Электроника: Post Exposure Bake9) Вычислительная техника: Process Environment Block11) Экология: prototype environmental buoy12) Химическое оружие: Pilot engineering base13) Расширение файла: Program Editor bottom overflow file (WordPerfect Library)14) Общественная организация: Population- Environment Balance15) NYSE. P E Corporation -
34 SPEED
1) Компьютерная техника: Small Profile Embedded Engine For Devices2) Военный термин: Special Program for Emergency Employment Development, system-wide project for electronic equipment at depots, systems planning and effectiveness evaluation device4) Биржевой термин: Securities Position Easy Electronic Dissemination5) Сокращение: Systems Planning, Engineering & Evaluation Device (USMC)6) Безопасность: Secure Package For Encrypting Electronic Data7) Базы данных: Searchable Prototype Experimental Evolutionary Database -
35 speed
1) Компьютерная техника: Small Profile Embedded Engine For Devices2) Военный термин: Special Program for Emergency Employment Development, system-wide project for electronic equipment at depots, systems planning and effectiveness evaluation device4) Биржевой термин: Securities Position Easy Electronic Dissemination5) Сокращение: Systems Planning, Engineering & Evaluation Device (USMC)6) Безопасность: Secure Package For Encrypting Electronic Data7) Базы данных: Searchable Prototype Experimental Evolutionary Database -
36 test
1) испытания || испытывать2) проверка; контроль || проверять; контролировать3) тест; тестирование || тестировать4) критерий; условие; признак•- test of independence
- accelerated life test
- acceleration test
- acceptance test
- actual test
- aging test
- alpha test
- asymptotic test
- audible test
- augmented test
- augmented Dickey-Fuller test
- autocorrelation test
- Bayes test
- bed of nails test
- bench test
- best unbiased test
- beta test
- biased test
- Box-Pierce test
- breakdown test
- breaking test
- break-point test
- Breush-Pagan test
- built-in test
- built-in error rate test
- burn-in reliability test
- built-in self-test
- busy test
- calibration test
- camera linearity test
- captive test
- Charpy test
- check test
- chi-square test
- chi-square test for goodness-of-fit
- chi-square test for homogeneity
- Chow test
- clock-rate test
- closed-loop test
- cointegration test
- combined environmental reliability test
- common factor test
- comparative listening test
- comparison test
- computer-aided test
- conditional moment test
- connectivity test
- conservative test
- consistent test
- constant acceleration test
- constant-load amplitude test
- continuity test
- cumulative sum test
- cumulative sum of squares test
- degradation rate test
- destructive test
- development test
- diagnostic test
- diagnostic function test
- Dickey-Fuller test
- dielectric breakdown test
- differencing test
- distribution-free test
- drive fitness test
- dummy test
- Durbin's h-test
- Durbin-Watson test
- dynamic test
- efficient test
- electrostatic discharge test
- engaged test
- engineering test
- environmental test
- ESD test
- exact test
- exhaustive test
- extensive test
- extreme test
- F-test
- failure-rate test
- field test
- Fisher's test
- Fisher's exact test
- flash test
- forced-failure test
- Friedman's test
- functional test
- gamma test
- Gleiser test
- Godfrey test
- Goldfeld-Quandt test
- go/no-go confidence test
- goodness-of-fit test
- goodness-of-fit chi-square test
- Granger causality test
- Hausman test
- high-potential test
- homogeneity test
- hot-weather test
- hypothesis test
- impact test
- in-circuit test
- independence chi-square test
- indoor test
- information matrix test
- integrated test
- intelligence test
- in-use life test
- invariant test
- J-test
- Kolmogorov-Smirnov test
- Kruskal-Wallis test
- Lagrange multiplier test
- leak test
- leakage test
- life test
- likelihood ratio test
- Ljung-Box test
- local loopback test
- logical test
- log-rank test
- longevity test
- long-term test
- long-time test
- loopback test
- lot-by-lot test
- mandrel test
- Mann-Whitney rank sum test
- Mantel-Cox test
- marginal test
- matrix life test
- memory address test
- misspecification test
- mock-up test
- model test
- modem loopback test
- moisture resistance test
- most powerful test
- multiple-comparison test
- nested test
- non-Bayes test
- nondestructive test
- non-linearity test
- non-nested test
- non-parametric test
- normal-theory based test
- off-line test
- omitted variables test
- on-demand test
- one-sample test
- one-sided test
- on-line test
- on-off test
- open-loop test
- operating-life test
- operational readiness and reliability test
- outer product of gradient test
- over-identifying restrictions test
- parameter constancy test
- parameter-free test
- parametric test
- Pearson's test
- percentage test
- performance test
- power-on self test
- predictive failure test
- preliminary test
- premodel test
- progressive stress test
- proof test
- prototype test
- qualification test
- randomization test
- randomized-step test
- rank test
- reliability test
- remote loopback test
- rig test
- ringing test
- robust statistical test
- routine test
- runs test
- semidestructive test
- sequential test
- sequential probability ratio test
- service test
- shakedown test
- shake-table test
- shelf-life test
- shock test
- short-term test
- short-time test
- significance test
- simulated test
- simulation test
- sing test
- space test
- specification test
- SS test
- static test
- statistical test
- step-stress test
- strength test
- structural test
- studentized test
- Student's test
- subjective test
- system test
- systems test
- terminal strength test
- thermal test
- thermal-fatigue test
- thermal-shock test
- tropical test
- truth-table test
- tuning-fork test
- Turing test
- two-sided test
- ultrasonic test
- unbiased test
- uniformly most powerful test
- unit root test
- variable addition test
- variable deletion test
- vertical-interval test
- vibration test
- vitality test
- voltage-breakdown test
- Wald test
- wear test
- White test
- Wilcoxon signed rank test -
37 framework
1) каркас; стойка; рама; остов; корпус; рамная конструкция2) структура, структурная схема; принципиальная схема3) основа (напр. логической схемы), база4) ферма6) блок данных8) державка; обойма; скоба9) система отсчёта, система координат10) концепция; исходная структура, базовая структура•- CIM framework
- common framework
- component connection framework
- conceptual framework
- concurrent engineering framework
- design management framework
- fabricated framework
- flexible framework
- manufacturing intelligent framework
- mathematical framework
- modeling framework
- organizational framework
- prototype tool frameworkEnglish-Russian dictionary of mechanical engineering and automation > framework
-
38 plant
1) завод; фабрика2) цех3) установка; агрегат; станция4) оборудование; машины•- assembly plant
- auto assembly plant
- auto engine plant
- automatic plant
- auto-transmission-parts plant
- auxiliary power plant
- bearing plant
- cadmium plating plant
- CIM plant
- climate-controlled plant
- collet plant
- controlled plant
- correlated plants
- distributed plants
- dust extracting plant
- dust extraction plant
- dust-collecting plant
- electric power plant
- engineering plant
- filtration plant
- flame-hardening plant
- flexible manufacturing plant
- FMS plant
- forging plant
- galvanizing plant
- gas turbine plant
- gas turbine power plant
- gear plant
- gear-cutting plant
- ground testing plant
- heat treatment plant
- heavy electric machinery plant
- induction-hardening plant
- jobbing plant
- lathe plant
- machinery plant
- manufacturing plant
- mass production plant
- oil pipe plant
- one-shift plant
- pilot plant
- power plant
- press plant
- pressings plant
- process flow plant
- process plant
- prototype plant
- pumping plant
- refrigerating plant
- sand plant
- sand-preparing plant
- shotblast plant
- spare plant
- spring-making plant
- steam plant
- steel plant
- transport plant
- unattended automated plant
- vacuum plant
- ventilating plant
- washing plant
- welding plantEnglish-Russian dictionary of mechanical engineering and automation > plant
-
39 product
1) изделие; продукт; продукция2) матем. произведение•- add-on products
- assembled product
- bar-coded product
- bonded abrasive product
- box-type product
- built-to-order product
- cast product
- close tolerance product
- communications-network products
- cross product
- customized products
- defective products
- discrete products
- dot product
- electrical product
- end product
- engineering product
- fast-changing products
- flawed product
- formed product
- general-purpose product
- globalized products
- green product
- highly engineered product
- homogeneous products
- hot-roll-forged products
- information products
- in-house products
- intermediate product
- light industrial products
- MAP-based products
- MAP-compatible product
- mechatronic product
- mid-range product
- mixed product
- multimedia products
- OEM product
- one-of-a-kind products
- outer product
- own products
- product of inertia
- proprietary products
- prototype product
- quality product
- ready-to-assemble product
- ready-to-finish product
- related products
- scalar product
- scalar triple product
- semifinished product
- servo products
- shaft products
- short-lived product
- special-purpose product
- special-to-print product
- standardized product
- tool-setting products
- typified product
- vector product
- vector triple product
- washdown productsEnglish-Russian dictionary of mechanical engineering and automation > product
-
40 workshop
1) цех; мастерская; участок, производственный участок; производственное помещение2) программа обучения в узкой области, программа интенсивного кратковременного обучения в узкой области3) конференция, симпозиум•- fixture workshop
- high-production workshop
- light workshop
- machining workshop
- prototype workshop
- tool workshopEnglish-Russian dictionary of mechanical engineering and automation > workshop
См. также в других словарях:
Prototype — A prototype is an original type, form, or instance of something serving as a typical example, basis, or standard for other things of the same category. The word derives from the Greek πρωτότυπον ( prototypon ), archetype, original , neutral of… … Wikipedia
Prototype (disambiguation) — A prototype is something that is representative of a category of things. Prototype may also refer to:;Automobiles* Citroën Prototype C, range of vehicles created by Citroën from 1955 to 1956 * Citroën Prototype Y, project of replacement of the… … Wikipedia
Engineering Division USD-9 — Airco DH.9 Airco DH.9/DH.9A … Wikipédia en Français
Engineering and Research Corporation — Infobox Company company name = Engineering and Research Corporation company company type = foundation = 1930 location = Riverdale, Maryland key people = industry = Aerospace and defense products = revenue = operating income = net income = num… … Wikipedia
Engineering Education Scheme — The Engineering Education Scheme is a scheme run in the United Kingdom by the Engineering Development Trust to promote the education of school students about engineering. It is part of the Royal Academy of Engineering s BEST programme.The… … Wikipedia
Engineering Division — Infobox Defunct company company name = Engineering Division company slogan = company type = fate = Predecessor = successor = foundation = 31 August 1918 defunct = location = industry = products = key people = num employees = parent = United… … Wikipedia
Engineering Research Center for Collaborative Adaptive Sensing of the Atmosphere — The Engineering Research Center for Collaborative Adaptive Sensing of the Atmosphere (CASA) is a National Science Foundation Engineering Center. The Center brings together a multidisciplinary group of engineers, computer scientists,… … Wikipedia
List of Historic Mechanical Engineering Landmarks — The following is a list of Historic Mechanical Engineering Landmarks as designated by the American Society of Mechanical Engineers since it began the program in 1971. The designation is granted to existing artifacts or systems representing a… … Wikipedia
Market engineering — comprises the structured, systematic and theoretically founded procedure of analyzing, designing, introducing and also quality assuring of electronic market platforms as well as their legal framework regarding simultaneously their market… … Wikipedia
aerospace engineering — aerospace engineer. the branch of engineering that deals with the design, development, testing, and production of aircraft and related systems (aeronautical engineering) and of spacecraft, missiles, rocket propulsion systems, and other equipment… … Universalium
Covini Engineering — is an Italian car manufacturer that was formed in 1978 by Ferruccio Covini. The company is generally best known for the Covini C6W, a 6 wheeled sports car that has two axles (four wheels) in the front of the car. Covini s first prototype, the… … Wikipedia