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101 sw & d
распределительный щит
Комплектное устройство, содержащее различную коммутационную аппаратуру, соединенное с одной или более отходящими электрическими цепями, питающееся от одной или более входящих цепей, вместе с зажимами для присоединения нейтральных и защитных проводников.
[ ГОСТ Р МЭК 60050-826-2009]
щит распределительный
Электротехническое устройство, объединяющее коммутационную, регулирующую и защитную аппаратуру, а также контрольно-измерительные и сигнальные приборы
[Терминологический словарь по строительству на 12 языках (ВНИИИС Госстроя СССР)]
распределительный щит
—
[А.С.Гольдберг. Англо-русский энергетический словарь. 2006 г.]EN
distribution board
assembly containing different types of switchgear and controlgear associated with one or more outgoing electric circuits fed from one or more incoming electric circuits, together with terminals for the neutral and protective conductors.
[IEV number 826-16-08]FR
tableau de répartition, m
ensemble comportant différents types d'appareillage associés à un ou plusieurs circuits électriques de départ alimentés par un ou plusieurs circuits électriques d'arrivée, ainsi que des bornes pour les conducteurs neutre et de protection.
[IEV number 826-16-08]Distribution switchboards, including the Main LV Switchboard (MLVS), are critical to the dependability of an electrical installation. They must comply with well-defined standards governing the design and construction of LV switchgear assemblies
A distribution switchboard is the point at which an incoming-power supply divides into separate circuits, each of which is controlled and protected by the fuses or switchgear of the switchboard. A distribution switchboard is divided into a number of functional units, each comprising all the electrical and mechanical elements that contribute to the fulfilment of a given function. It represents a key link in the dependability chain.
Consequently, the type of distribution switchboard must be perfectly adapted to its application. Its design and construction must comply with applicable standards and working practises.
[Schneider Electric]Распределительные щиты, включая главный распределительный щит низкого напряжения (ГРЩ), играют решающую роль в обеспечении надежности электроустановки. Они должны отвечать требованиям соответствующих стандартов, определяющих конструкцию и порядок изготовления НКУ распределения электроэнергии.
В распределительном щите выполняется прием электроэнергии и ее распределение по отдельным цепям, каждая из которых контролируется и защищается плавкими предохранителями или автоматическими выключателями.
Распределительный щит состоит из функциональных блоков, включающих в себя все электрические и механические элементы, необходимые для выполнения требуемой функции. Распределительный щит представляет собой ключевое звено в цепи обеспечения надежности.
Тип распределительного щита должен соответствовать области применения. Конструкция и изготовление распределительного щита должны удовлетворять требованиям применимых стандартов и учитывать накопленную практику применения.
[Перевод Интент]Рис. Schneider Electric
With Prisma Plus G you can be sure to build 100% Schneider Electric switchboards that are safe, optimised:
> All components (switchgear, distribution blocks, prefabricated connections, etc.) are perfectly rated and coordinated to work together;
> All switchboard configurations, even the most demanding ones, have been tested.
You can prove that your switchboard meets the current standards, at any time.
You can be sure to build a reliable electrical installation and give your customers full satisfaction in terms of dependability and safety for people and the installation.
Prisma Plus G with its discreet design, blends harmoniously into all tertiary and industrial buildings, including in entrance halls and passageways.
With Prisma Plus G you can build just the right switchboard for your customer, sized precisely to fit costs and needs.
With this complete, prefabricated and tested system, it's easy to upgrade your installation and still maintain the performance levels.
> The wall-mounted and floor-standing enclosures combine easily with switchboards already in service.
> Devices can be replaced or added at any time.
[Schneider Electric]С помощью оболочек Prisma Plus G можно создавать безопасные распределительные щиты, на 100 % состоящие из изделий Schneider Electric:
> все изделия (коммутационная аппаратура, распределительные блоки, готовые заводские соединения и т. д.) полностью совместимы механически и электрически;
> все варианты компоновки распределительных щитов, в том числе для наиболее ответственных применений, прошли испытания.В любое время вы можете доказать, что ваши распределительные щиты полностью соответствуют требованиям действующих стандартов.
Вы можете быть полностью уверены в том, что создаете надежные электроустановки, удовлетворяющие всем требованиям безопасности для людей и оборудования
Благодаря строгому дизайну, распределительные щиты Prisma Plus G гармонично сочетаются с интерьером любого общественного или промышленного здания. Они хорошо смотрятся и в вестибюле, и в коридоре.
Применяя оболочки Prisma Plus G можно создавать распределительные щиты, точно соответствующие требованиям заказчика как с точки зрения технических характеристик, так и стоимости.
С помощью данной испытанной системы, содержащей все необходимые компоненты заводского изготовления можно легко модернизировать существующую электроустановку и поддерживать её уровни производительности.> Навесные и напольные оболочки можно легко присоединить к уже эксплуатируемым распределительным щитам.
> Аппаратуру можно заменять или добавлять в любое время.
[Перевод Интент]The switchboard, central to the electrical installation.
Both the point of arrival of energy and a device for distribution to the site applications, the LV switchboard is the intelligence of the system, central to the electrical installation.
[Schneider Electric]Распределительный щит – «сердце» электроустановки.
Низковольтное комплектное устройство распределения является «сердцем» электроустановки, поскольку именно оно принимает электроэнергию из сети и распределяет её по территориально распределенным нагрузкам.
[Перевод Интент]Тематики
- НКУ (шкафы, пульты,...)
- электроснабжение в целом
EN
- branch distribution panel
- distributing board
- distributing panel
- distributing switchboard
- distribution bench
- distribution board
- distribution panel
- distribution switchboard
- gear
- keyboard
- PNL
- SB
- sw & d
- switchboard
- switchboard panel
DE
- elektrischer Verteiler, m
- Schalttafel
- Verteiler, m
FR
- tableau de distribution
- tableau de répartition, m
Англо-русский словарь нормативно-технической терминологии > sw & d
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102 heat
1) жар
2) жаровой
3) забег
4) каление
5) нагревать
6) накаливать
7) натапливать
8) натопить
9) обогревать
10) плавочный
11) подогрев
12) подогревать
13) тепло
14) тепловоспринимающий
15) тепловый
16) теплозащитный
17) теплообменный
18) теплота
19) тепловой
20) тепловая энергия
21) нагреваться
22) накаливаться
23) греть
24) калильный
25) жаровый
26) котел
27) накалить
28) теплоемкость
29) калория
– accumulation of heat
– available heat
– blow heat
– bring to red heat
– by-product heat
– cold heat
– convection heat
– cupola heat
– diverted heat
– evaporation heat
– external heat
– finishing off a heat
– generate heat
– heat abstraction
– heat ageing
– heat balance
– heat barrier
– heat blower
– heat capacity
– heat carrier
– heat chamber
– heat conducting
– heat conduction
– heat conductivity
– heat conductor
– heat consumer
– heat content
– heat demand
– heat detector
– heat differential
– heat dissipation
– heat emission
– heat energy
– heat engine
– heat engineering
– heat exchange
– heat exchanger
– heat exchanging
– heat filter
– heat finishing
– heat flow
– heat generation
– heat generator
– heat input
– heat insulation
– heat log
– heat model
– heat of combustion
– heat of formation
– heat of superheat
– heat of vaporization
– heat peeling
– heat pick-up
– heat pipe
– heat production
– heat productivity
– heat rate
– heat rating
– heat rays
– heat recovery
– heat regeneration
– heat removal
– heat removing
– heat requirement
– heat resistance
– heat run
– heat sample
– heat schedule
– heat shield
– heat shielding
– heat shock
– heat sink
– heat source
– heat sterilization
– heat storage
– heat stress
– heat supply
– heat supplying
– heat tapping
– heat test
– heat time
– heat transfer
– heat transmission
– heat transmitting
– heat transport
– heat treatment
– heat utilization
– heat waves
– internal heat
– Joulean heat
– latent heat
– liberate heat
– low heat value
– low-grade heat
– melting heat
– overblow heat
– pour heat
– progress of heat
– quantity of heat
– radiant heat
– radiogenic heat
– recover heat
– red heat
– residual heat
– resistance to heat
– sensible heat
– specific heat
– store heat
– surplus heat
– total heat
– utilize heat
– viscous heat
– waste heat
– waste-gas heat
– welding heat
– work the heat
ablation heat shield — <cosm.> экран тепловой эрозионный
counter-current heat exchanger — противоточный теплообменник
cross-flow heat exchanger — теплообменник с перекрестным током
float-head heat exchanger — теплообменник с плавающей головкой
heat exchange coefficient — <phys.> коэффициент теплообмена
heat transfer coefficient — <phys.> коэффициент теплоотдачи, коэффициент теплопередачи
intermediate heat exchanger — <engin.> теплообменник промежутночный
mechanical equivalent of heat — механический эквивалент тепла
U-tube heat exchanger — теплообменник с У-образными трубками
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103 в отличие от
•Active current:alternating current that part in the phase with the voltage or the effective energy, as differentiated (or distinguished, or distinct) from the wattless or useless energy.
•The transistor is a current-controlled device as opposed to [or as distinct from, or in distinction to, or in contradistinction to, or in contrast to (or with), or as contrasted to, or unlike] the vacuum tube, which is a voltage-controlled device.
•The company has achieved a 200% increase in productivity by using the robot as opposed to manual servicing.
•The ultrasonic welding machine is semi-portable. By contrast, the resistance welder is a relatively cumbersome unit to move to a new location.
•Unlike copper windings, permanent magnets never wear out.
•These reactors are called light-water reactors to distinguish them from the type that uses heavy water.
•Contrary to the usual practice of...
•Sediments deposited by contour currents are called contourites, to set them apart from turbidites.
* * *В отличие от -- as opposed to, as contrasted to, as contrasted with; in contrast with, in contrast to; as distinct from, as distinguished from; unlike, unlike for; did not... as did, had not ... as had (британская конструкция)Most fine-pitch gears are used to transmit motion as opposed to the transmission of power. (В отличие от силовых передач большинство...)This possible separation regime appears to be of the ordinary type ( as contrasted to singular separation).Corrosion is brought about through chemical or electrochemical action, as contrasted with erosion caused by mechanical action.In contrast with the thicker inlet boundary layer, there is a pronounced thinning of the layer across the rotor.Also in contrast to the torsion mode, the critical phase angle always represented a backward wave.In this context the term "flooded bearing" becomes akin to "pressurized" bearing as distinct from Mr. G.'s classification where "flooded" is associated with bearings having no supply flow rate.The simplified turbine acceptance test, as distinguished from the full ASME turbine acceptance test, measures feedwater flow directly.Another advantage is that, unlike thermocouples, all components of this system including sensors are reusable.Unlike for torsion, the critical phase angle for the bending modes varied with sweep.Two weeks float is currently shown for these facilities compared to the rest of the 1A topside facilities (... показан двухнедельный плавающий срок...)Русско-английский научно-технический словарь переводчика > в отличие от
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104 MSI
1) Общая лексика: Маврикийская стратегия осуществления (Mauritius Strategy of Implementation)2) Компьютерная техника: Multi Service Interface3) Американизм: Multiple Sources Of Income4) Военный термин: First year of Military Science, Inshore Minesweeper, Multisensor Interpretation, maintenance significant item, maintenance supply itemization, maintenance support index, military service institution, military standard item, missile status indicator, multisensor imagery5) Техника: Maritime Safety Information, manned satellite inspector, mechanical stress improvement, medium scale-integration, multispectral imager6) Сокращение: Marine Specialty Inc. (USA), Minesweeper, Inshore (USA), Multi-Sensor Integration, Multi-Source Integration, Multi-Spectral Imagery, man-system integration, medium-scale integration7) Университет: Minority Serving Institution, Modified Supplemental Instruction8) Физиология: Micro Structured Implant9) Электроника: Medium Scale Integrated10) Вычислительная техника: Medium Scale Integration, интеграция среднего уровня, Micro-Star International (Hersteller, Taiwan)11) Нефть: multiport selective injection, показатель трудоёмкости технического обслуживания (maintenance support index)12) Фирменный знак: Management Services Incorporated, Mayfair Storage Interconnect, Micro Star International, Micro Systems International, Multispectral Solutions, Inc.13) Бытовая техника: средняя степень интеграции14) Образование: Middle School Instruction15) Пластмассы: Migration Series Instruction16) Химическое оружие: munitions storage igloo17) Макаров: circuit medium-scale integration circuit18) Расширение файла: Medical Services Insurance19) Чат: Mindless Self Indulgence20) Программное обеспечение: Microsoft Software Installation21) Единицы измерений: Molecular Simulations Inc22) AMEX. Movie Star, Inc.23) Базы данных: Magnetic Source Imaging -
105 MSi
1) Общая лексика: Маврикийская стратегия осуществления (Mauritius Strategy of Implementation)2) Компьютерная техника: Multi Service Interface3) Американизм: Multiple Sources Of Income4) Военный термин: First year of Military Science, Inshore Minesweeper, Multisensor Interpretation, maintenance significant item, maintenance supply itemization, maintenance support index, military service institution, military standard item, missile status indicator, multisensor imagery5) Техника: Maritime Safety Information, manned satellite inspector, mechanical stress improvement, medium scale-integration, multispectral imager6) Сокращение: Marine Specialty Inc. (USA), Minesweeper, Inshore (USA), Multi-Sensor Integration, Multi-Source Integration, Multi-Spectral Imagery, man-system integration, medium-scale integration7) Университет: Minority Serving Institution, Modified Supplemental Instruction8) Физиология: Micro Structured Implant9) Электроника: Medium Scale Integrated10) Вычислительная техника: Medium Scale Integration, интеграция среднего уровня, Micro-Star International (Hersteller, Taiwan)11) Нефть: multiport selective injection, показатель трудоёмкости технического обслуживания (maintenance support index)12) Фирменный знак: Management Services Incorporated, Mayfair Storage Interconnect, Micro Star International, Micro Systems International, Multispectral Solutions, Inc.13) Бытовая техника: средняя степень интеграции14) Образование: Middle School Instruction15) Пластмассы: Migration Series Instruction16) Химическое оружие: munitions storage igloo17) Макаров: circuit medium-scale integration circuit18) Расширение файла: Medical Services Insurance19) Чат: Mindless Self Indulgence20) Программное обеспечение: Microsoft Software Installation21) Единицы измерений: Molecular Simulations Inc22) AMEX. Movie Star, Inc.23) Базы данных: Magnetic Source Imaging -
106 msi
1) Общая лексика: Маврикийская стратегия осуществления (Mauritius Strategy of Implementation)2) Компьютерная техника: Multi Service Interface3) Американизм: Multiple Sources Of Income4) Военный термин: First year of Military Science, Inshore Minesweeper, Multisensor Interpretation, maintenance significant item, maintenance supply itemization, maintenance support index, military service institution, military standard item, missile status indicator, multisensor imagery5) Техника: Maritime Safety Information, manned satellite inspector, mechanical stress improvement, medium scale-integration, multispectral imager6) Сокращение: Marine Specialty Inc. (USA), Minesweeper, Inshore (USA), Multi-Sensor Integration, Multi-Source Integration, Multi-Spectral Imagery, man-system integration, medium-scale integration7) Университет: Minority Serving Institution, Modified Supplemental Instruction8) Физиология: Micro Structured Implant9) Электроника: Medium Scale Integrated10) Вычислительная техника: Medium Scale Integration, интеграция среднего уровня, Micro-Star International (Hersteller, Taiwan)11) Нефть: multiport selective injection, показатель трудоёмкости технического обслуживания (maintenance support index)12) Фирменный знак: Management Services Incorporated, Mayfair Storage Interconnect, Micro Star International, Micro Systems International, Multispectral Solutions, Inc.13) Бытовая техника: средняя степень интеграции14) Образование: Middle School Instruction15) Пластмассы: Migration Series Instruction16) Химическое оружие: munitions storage igloo17) Макаров: circuit medium-scale integration circuit18) Расширение файла: Medical Services Insurance19) Чат: Mindless Self Indulgence20) Программное обеспечение: Microsoft Software Installation21) Единицы измерений: Molecular Simulations Inc22) AMEX. Movie Star, Inc.23) Базы данных: Magnetic Source Imaging -
107 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
-
108 rnethod
метод, способamplitude (comparison) radio direction finding rnethod — амплитудный метод радиопеленгации (измерением амплитуд принимаемых сигналов)
battlebook calculus (operations simulation) rnethod — метод моделирования боевых операций (по перечню основных операционных принципов)
fording rnethod for (water obstacle) crossing — форсирование водной преграды с переправой (машин) вброд
graphic traverse rnethod of obtaining (position) coordinates — полигонометрический метод определения координат (ОП)
one-man, one-sight rnethod — способ наводки (орудия) одним наводчиком с одним прицелом
two-men, two-sights rnethod — способ наводки (орудия) взаимным визированием (двумя наводчиками с двумя прицелами)
visual (nuclear) damage estimation rnethod — визуальный метод определения вероятного поражения цели при ЯУ
— clock face rnethod— two-station observation rnethod -
109 control
управление; регулирование; контроль; орган [рычаг] управления; руль; pl. система управления или регулирования; управлять; регулироватьback seat flight control — управление ЛА из задней кабины [с места заднего лётчика]; pl. дублирующие органы управления в задней кабине
be out of control — терять управление [управляемость]; выходить из-под управления [контроля]
continuously variable thrust control — плавное [бесступенчатое] регулирование тяги
control c.g. control — регулирование центровки (ЛА)
control of missile attitude — стабилизация ракеты; управление пространственным положением ракеты
control of the air — превосходство или господство в воздухе; превосходство в области авиации [в авиационной технике]; контроль воздушного пространства
control of the yoke — разг. управление штурвалом
control of thrust orientation — управление ориентированием [направлением вектора] тяги
flight deck lighting controls — органы управления [ручки регулировки] освещением кабины экипажа
fling the controls over — перебрасывать органы управления (в противоположную сторону),
flow control with altitude compensation — регулятор расхода [подачи] с высотным корректором
fuel dump valve control — кран [рычаг крана] аварийного слива топлива
gas jet attitude control — управление пространственным положением с помощью системы газоструйных рулей
go out of control — терять управление, выходить из-под управления [контроля]
ground rollout rudder steering control — управление пробегом [на пробеге] с помощью руля направления
interconnected fuel and propeller controls — объединённая система регулирования подачи топлива и шага винта
jet tab thrust vector control — управление вектором тяги с помощью газовых рулей; дефлекторное управление вектором тяги
jet(-deflection, -direction) control — реактивное [струйное] управление; управление изменением направления тяги; струйный руль
manual mixture shut-off control — рычаг отсечки подачи горючей смеси, рычаг останова [выключения] двигателя
maximum boundary layer control — управление пограничным слоем при наибольшей эффективности [производительности, интенсивности работы] системы
recover the control — восстанавливать управление [управляемость]
respond to the controls — реагировать [отвечать] на отклонение рулей [органов управления]
space shuttle orbiter control — управление орбитальной ступенью челночного воздушно-космического аппарата
throttle and collective pitch control — верт. рычаг «шаг — газ»
-
110 Cubitt, William
[br]b. 1785 Dilham, Norfolk, Englandd. 13 October 1861 Clapham Common, Surrey, England[br]English civil engineer and contractor.[br]The son of a miller, he received a rudimentary education in the village school. At an early age he was helping his father in the mill, and in 1800 he was apprenticed to a cabinet maker. After four years he returned to work with his father, but, preferring to leave the parental home, he not long afterwards joined a firm of agricultural-machinery makers in Swanton in Norfolk. There he acquired a reputation for making accurate patterns for the iron caster and demonstrated a talent for mechanical invention, patenting a self-regulating windmill sail in 1807. He then set up on his own as a millwright, but he found he could better himself by joining the engineering works of Ransomes of Ipswich in 1812. He was soon appointed their Chief Engineer, and after nine years he became a partner in the firm until he moved to London in 1826. Around 1818 he invented the treadmill, with the aim of putting prisoners to useful work in grinding corn and other applications. It was rapidly adopted by the principal prisons, more as a means of punishment than an instrument of useful work.From 1814 Cubitt had been gaining experience in civil engineering, and upon his removal to London his career in this field began to take off. He was engaged on many canal-building projects, including the Oxford and Liverpool Junction canals. He accomplished some notable dock works, such as the Bute docks at Cardiff, the Middlesborough docks and the coal drops on the river Tees. He improved navigation on the river Severn and compiled valuable reports on a number of other leading rivers.The railway construction boom of the 1840s provided him with fresh opportunities. He engineered the South Eastern Railway (SER) with its daringly constructed line below the cliffs between Folkestone and Dover; the railway was completed in 1843, using massive charges of explosive to blast a way through the cliffs. Cubitt was Consulting Engineer to the Great Northern Railway and tried, with less than his usual success, to get the atmospheric system to work on the Croydon Railway.When the SER began a steamer service between Folkestone and Boulogne, Cubitt was engaged to improve the port facilities there and went on to act as Consulting Engineer to the Boulogne and Amiens Railway. Other commissions on the European continent included surveying the line between Paris and Lyons, advising the Hanoverian government on the harbour and docks at Hamburg and directing the water-supply works for Berlin.Cubitt was actively involved in the erection of the Crystal Palace for the Great Exhibition of 1851; in recognition of this work Queen Victoria knighted him at Windsor Castle on 23 December 1851.Cubitt's son Joseph (1811–72) was also a notable civil engineer, with many railway and harbour works to his credit.[br]Principal Honours and DistinctionsKnighted 1851. FRS 1830. President, Institution of Civil Engineers 1850 and 1851.Further ReadingObituary, 1862, Minutes of 'the Proceedings of the Institution of Civil Engineers 21:552– 8.LRD -
111 Leonardo da Vinci
[br]b. 15 April 1452 Vinci, near Florence, Italy,d. 2 May 1519 St Cloux, near Amboise, France.[br]Italian scientist, engineer, inventor and artist.[br]Leonardo was the illegitimate son of a Florentine lawyer. His first sixteen years were spent with the lawyer's family in the rural surroundings of Vinci, which aroused in him a lifelong love of nature and an insatiable curiosity in it. He received little formal education but extended his knowledge through private reading. That gave him only a smattering of Latin, a deficiency that was to be a hindrance throughout his active life. At sixteen he was apprenticed in the studio of Andrea del Verrochio in Florence, where he received a training not only in art but in a wide variety of crafts and technical arts.In 1482 Leonardo went to Milan, where he sought and obtained employment with Ludovico Sforza, later Duke of Milan, partly to sculpt a massive equestrian statue of Ludovico but the work never progressed beyond the full-scale model stage. He did, however, complete the painting which became known as the Virgin of the Rocks and in 1497 his greatest artistic achievement, The Last Supper, commissioned jointly by Ludovico and the friars of Santa Maria della Grazie and painted on the wall of the monastery's refectory. Leonardo was responsible for the court pageants and also devised a system of irrigation to supply water to the plains of Lombardy. In 1499 the French army entered Milan and deposed Leonardo's employer. Leonardo departed and, after a brief visit to Mantua, returned to Florence, where for a time he was employed as architect and engineer to Cesare Borgia, Duke of Romagna. Around 1504 he completed another celebrated work, the Mona Lisa.In 1506 Leonardo began his second sojourn in Milan, this time in the service of King Louis XII of France, who appointed him "painter and engineer". In 1513 Leonardo left for Rome in the company of his pupil Francesco Melzi, but his time there was unproductive and he found himself out of touch with the younger artists active there, Michelangelo above all. In 1516 he accepted with relief an invitation from King François I of France to reside at the small château of St Cloux in the royal domain of Amboise. With the pension granted by François, Leonardo lived out his remaining years in tranquility at St Cloux.Leonardo's career can hardly be regarded as a success or worthy of such a towering genius. For centuries he was known only for the handful of artistic works that he managed to complete and have survived more or less intact. His main activity remained hidden until the nineteenth and twentieth centuries, during which the contents of his notebooks were gradually revealed. It became evident that Leonardo was one of the greatest scientific investigators and inventors in the history of civilization. Throughout his working life he extended a searching curiosity over an extraordinarily wide range of subjects. The notes show careful investigation of questions of mechanical and civil engineering, such as power transmission by means of pulleys and also a form of chain belting. The notebooks record many devices, such as machines for grinding and polishing lenses, a lathe operated by treadle-crank, a rolling mill with conical rollers and a spinning machine with pinion and yard divider. Leonardo made an exhaustive study of the flight of birds, with a view to designing a flying machine, which obsessed him for many years.Leonardo recorded his observations and conclusions, together with many ingenious inventions, on thousands of pages of manuscript notes, sketches and drawings. There are occasional indications that he had in mind the publication of portions of the notes in a coherent form, but he never diverted his energy into putting them in order; instead, he went on making notes. As a result, Leonardo's impact on the development of science and technology was virtually nil. Even if his notebooks had been copied and circulated, there were daunting impediments to their understanding. Leonardo was left-handed and wrote in mirror-writing: that is, in reverse from right to left. He also used his own abbreviations and no punctuation.At his death Leonardo bequeathed his entire output of notes to his friend and companion Francesco Melzi, who kept them safe until his own death in 1570. Melzi left the collection in turn to his son Orazio, whose lack of interest in the arts and sciences resulted in a sad period of dispersal which endangered their survival, but in 1636 the bulk of them, in thirteen volumes, were assembled and donated to the Ambrosian Library in Milan. These include a large volume of notes and drawings compiled from the various portions of the notebooks and is now known as the Codex Atlanticus. There they stayed, forgotten and ignored, until 1796, when Napoleon's marauding army overran Italy and art and literary works, including the thirteen volumes of Leonardo's notebooks, were pillaged and taken to Paris. After the war in 1815, the French government agreed to return them but only the Codex Atlanticus found its way back to Milan; the rest remained in Paris. The appendix to one notebook, dealing with the flight of birds, was later regarded as of sufficient importance to stand on its own. Four small collections reached Britain at various times during the seventeenth and eighteenth centuries; of these, the volume in the Royal Collection at Windsor Castle is notable for its magnificent series of anatomical drawings. Other collections include the Codex Leicester and Codex Arundel in the British Museum in London, and the Madrid Codices in Spain.Towards the end of the nineteenth century, Leonardo's true stature as scientist, engineer and inventor began to emerge, particularly with the publication of transcriptions and translations of his notebooks. The volumes in Paris appeared in 1881–97 and the Codex Atlanticus was published in Milan between 1894 and 1904.[br]Principal Honours and Distinctions"Premier peintre, architecte et mécanicien du Roi" to King François I of France, 1516.Further ReadingE.MacCurdy, 1939, The Notebooks of Leonardo da Vinci, 2 vols, London; 2nd edn, 1956, London (the most extensive selection of the notes, with an English translation).G.Vasari (trans. G.Bull), 1965, Lives of the Artists, London: Penguin, pp. 255–271.C.Gibbs-Smith, 1978, The Inventions of Leonardo da Vinci, Oxford: Phaidon. L.H.Heydenreich, Dibner and L. Reti, 1981, Leonardo the Inventor, London: Hutchinson.I.B.Hart, 1961, The World of Leonardo da Vinci, London: Macdonald.LRD / IMcN -
112 exhaust
1.выпускать; вакуумировать; откачивать; истощать2.выпуск; выхлоп; спуск; выпускание; сдув-ка; сброс пара; газообразные отходы; отработавший газ; сбросной газ; отходящий газ; отработанный газ; выхлопной газ; вытяжное устройство; откачка; вакуумирование; истощение -
113 обслуживание техническое
техническое обслуживание
Совокупность действий, выполняемых для сохранения или восстановления состояния изделия, в котором оно способно отвечать требованиям соответствующих технических условий и выполнять необходимые функции.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Текущие действия, выполняемые для сохранения в полной мере работоспособного состояния установленного электрооборудования.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Комплекс операций и/или организационных действий, направленных на поддержание объекта в состоянии или возвращение объекта в состояние, в котором он способен выполнять требуемую функцию.
[ОСТ 45.152-99 ]
обслуживание техническое
Комплекс работ для поддержания исправности или работоспособности машин и оборудования при их эксплуатации, хранении и транспортировании
[Терминологический словарь по строительству на 12 языках (ВНИИИС Госстроя СССР)]EN
maintenance
1. All action taken to retain materiel in or to restore it to a specified condition. It includes: inspection, testing, servicing, classification as to serviceability, repair, rebuilding, and reclamation.
2. All supply and repair action taken to keep a force in condition to carry out its mission.
3. The routine recurring work required to keep a facility (plant, building, structure, ground facility, utility system, or other real property) in such condition that it may be continuously utilized, at its original or designed capacity and efficiency, for its intended purpose.[Dictionary of Military and Associated Terms. US Department of Defense 2005]Тематики
- тех. обсл. и ремонт средств электросвязи
Синонимы
- ТО
EN
- backup
- concept maintenance
- engineering service
- machine servicing
- maintenance
- maintenance service
- maintenance support
- maintenance work
- maintenance works
- mechanical services
- servicing
- technical maintenance
DE
FR
Русско-немецкий словарь нормативно-технической терминологии > обслуживание техническое
114 entretien des machines
техническое обслуживание
Совокупность действий, выполняемых для сохранения или восстановления состояния изделия, в котором оно способно отвечать требованиям соответствующих технических условий и выполнять необходимые функции.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Текущие действия, выполняемые для сохранения в полной мере работоспособного состояния установленного электрооборудования.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Комплекс операций и/или организационных действий, направленных на поддержание объекта в состоянии или возвращение объекта в состояние, в котором он способен выполнять требуемую функцию.
[ОСТ 45.152-99 ]
обслуживание техническое
Комплекс работ для поддержания исправности или работоспособности машин и оборудования при их эксплуатации, хранении и транспортировании
[Терминологический словарь по строительству на 12 языках (ВНИИИС Госстроя СССР)]EN
maintenance
1. All action taken to retain materiel in or to restore it to a specified condition. It includes: inspection, testing, servicing, classification as to serviceability, repair, rebuilding, and reclamation.
2. All supply and repair action taken to keep a force in condition to carry out its mission.
3. The routine recurring work required to keep a facility (plant, building, structure, ground facility, utility system, or other real property) in such condition that it may be continuously utilized, at its original or designed capacity and efficiency, for its intended purpose.[Dictionary of Military and Associated Terms. US Department of Defense 2005]Тематики
- тех. обсл. и ремонт средств электросвязи
Синонимы
- ТО
EN
- backup
- concept maintenance
- engineering service
- machine servicing
- maintenance
- maintenance service
- maintenance support
- maintenance work
- maintenance works
- mechanical services
- servicing
- technical maintenance
DE
FR
Франко-русский словарь нормативно-технической терминологии > entretien des machines
115 entretien technique des machines
техническое обслуживание
Совокупность действий, выполняемых для сохранения или восстановления состояния изделия, в котором оно способно отвечать требованиям соответствующих технических условий и выполнять необходимые функции.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Текущие действия, выполняемые для сохранения в полной мере работоспособного состояния установленного электрооборудования.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Комплекс операций и/или организационных действий, направленных на поддержание объекта в состоянии или возвращение объекта в состояние, в котором он способен выполнять требуемую функцию.
[ОСТ 45.152-99 ]
обслуживание техническое
Комплекс работ для поддержания исправности или работоспособности машин и оборудования при их эксплуатации, хранении и транспортировании
[Терминологический словарь по строительству на 12 языках (ВНИИИС Госстроя СССР)]EN
maintenance
1. All action taken to retain materiel in or to restore it to a specified condition. It includes: inspection, testing, servicing, classification as to serviceability, repair, rebuilding, and reclamation.
2. All supply and repair action taken to keep a force in condition to carry out its mission.
3. The routine recurring work required to keep a facility (plant, building, structure, ground facility, utility system, or other real property) in such condition that it may be continuously utilized, at its original or designed capacity and efficiency, for its intended purpose.[Dictionary of Military and Associated Terms. US Department of Defense 2005]Тематики
- тех. обсл. и ремонт средств электросвязи
Синонимы
- ТО
EN
- backup
- concept maintenance
- engineering service
- machine servicing
- maintenance
- maintenance service
- maintenance support
- maintenance work
- maintenance works
- mechanical services
- servicing
- technical maintenance
DE
FR
Франко-русский словарь нормативно-технической терминологии > entretien technique des machines
116 technische Wartung
техническое обслуживание
Совокупность действий, выполняемых для сохранения или восстановления состояния изделия, в котором оно способно отвечать требованиям соответствующих технических условий и выполнять необходимые функции.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Текущие действия, выполняемые для сохранения в полной мере работоспособного состояния установленного электрооборудования.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Комплекс операций и/или организационных действий, направленных на поддержание объекта в состоянии или возвращение объекта в состояние, в котором он способен выполнять требуемую функцию.
[ОСТ 45.152-99 ]
обслуживание техническое
Комплекс работ для поддержания исправности или работоспособности машин и оборудования при их эксплуатации, хранении и транспортировании
[Терминологический словарь по строительству на 12 языках (ВНИИИС Госстроя СССР)]EN
maintenance
1. All action taken to retain materiel in or to restore it to a specified condition. It includes: inspection, testing, servicing, classification as to serviceability, repair, rebuilding, and reclamation.
2. All supply and repair action taken to keep a force in condition to carry out its mission.
3. The routine recurring work required to keep a facility (plant, building, structure, ground facility, utility system, or other real property) in such condition that it may be continuously utilized, at its original or designed capacity and efficiency, for its intended purpose.[Dictionary of Military and Associated Terms. US Department of Defense 2005]Тематики
- тех. обсл. и ремонт средств электросвязи
Синонимы
- ТО
EN
- backup
- concept maintenance
- engineering service
- machine servicing
- maintenance
- maintenance service
- maintenance support
- maintenance work
- maintenance works
- mechanical services
- servicing
- technical maintenance
DE
FR
Немецко-русский словарь нормативно-технической терминологии > technische Wartung
117 блок кольцевой магистрали
блок кольцевой магистрали
БКМ
-
[Интент]EN
ring main unit in electrical power distribution
A standard piece of switchgear in distribution systems comprising of switches for switching power cable rings and of switches in series with fuses for the protection of distrbution transformers. RMU: Ring Main Unit. RMU used for H.T.side. RMU is having 3no.s of switches(Circuit Breakers or Isolators or LBS), it is used for two inputs with mechanical or electrical interlock and one outgoing to the load. Either one input with two outgoings. RMU used for redundancy feeder's purpose.
Ring main unit is used in a secondary distribution system. It is basically used for an uninterrupted power supply. Alongside, it also protects your secondary side transformer from the occasional transient currents. Depending on your applications and loading conditons you can use a swicth fuse combination or a circuit breaker to protect the transformer. This transformer connected to the switch fuse/ circuit breaker is called your T off. In a common arrangement you have Load break swicthes on both the sides of your T off. Ring main Units come in standard ratings of 11/22/33 kV, 630/1250 A, 21 KA/3 secs.
[ http://wiki.answers.com/Q/What_is_a_ring_main_unit_in_electrical_power_distribution]Тематики
EN
Русско-английский словарь нормативно-технической терминологии > блок кольцевой магистрали
118 электрические характеристики НКУ
электрические характеристики НКУ
-
[Интент]Параллельные тексты EN-RU
The Standard IEC 60439-1 identifies the nominal characteristics to be assigned to each assembly, defines the environmental service conditions, establishes the mechanical requirements and gives prescriptions about:
• insulation
• thermal behaviour
• short-circuit withstand strength
• protection against electrical shock
• degree of protection of the enclosure
• installed components, internal separation and connections inside the assembly
• electronic equipment supply circuits.
Information specified under items a) and b) shall be given on the nameplate according to the Standard.
Information from items c) to t), where applicable, shall be given either on the nameplates or in the technical documentation of the manufacturer:
a) manufacturer ’s name or trade mark;
b) type designation or identification number, or any other means of identification making it possible to obtain relevant information from the manufacturer;
c) IEC 60439-1;
d) type of current (and frequency, in the case of a.c.);
e) rated operational voltages;
f) rated insulation voltages (rated impulse withstand voltage, when declared by the manufacturer);
g) rated voltages of auxiliary circuits, if applicable;
h) limits of operation;
j) rated current of each circuit, if applicable;
k) short-circuit withstand strength;
l) degree of protection;
m) measures for protection of persons;
n) service conditions for indoor use, outdoor use or special use, if different from the usual service conditions.
Pollution degree when declared by the manufacturer;
o) types of system earthing (neutral conductor) for which the ASSEMBLY is designed;
p) dimensions given preferably in the order of height, width (or length), depth;
q) weight;
r) form of internal separation;
s) types of electrical connections of functional units;
t) environment 1 or 2.
[ABB]Стандарт МЭК 60439-1 определяет номинальные характеристики НКУ, условия эксплуатации, требования к механической части конструкции, а также следующие параметры:
• изоляция;
• превышение температуры;
• прочность к воздействию тока короткого замыкания;
• защита от поражения электрическим током;
• степень защиты, обеспечиваемая оболочкой;
• комплектующие элементы, внутреннее разделение НКУ ограждениями и перегородками, электрические соединения внутри НКУ;
• требования к цепям питания электронного оборудования.
Информация, относящаяся к пунктам а) и b), должна быть указана на паспортной табличке, соответствующей данному стандарту.
Информация, приведенная в пунктах с) … d), должна быть указана либо на паспортной табличке, либо в технической документации изготовителя:
a) наименование изготовителя или товарный знак;
b) обозначение типа, условного номера или другого знака, позволяющих получить необходимую информацию от изготовителя;
c) МЭК 60439-1;
d) род тока (а для переменно тока и частота.);
e) номинальные рабочие напряжения;
f) номинальное напряжение изоляции (или указываемое изготовителем номинальное импульсное выдерживаемое напряжение);
g) номинальное напряжение вспомогательных цепей, если таковые имеются;
h) предельные отклонения параметров;
j) номинальный ток каждой цепи, если таковые приводят;
k) прочность к воздействию короткого замыкания;
l) степень защиты;
m) меры защиты персонала;
n) нормальные условия эксплуатации при внутренней или наружной установке, а также специальные условия эксплуатации, если они отличаются от нормальных.
Степень загрязнения, если она указывается изготовителем;
o) вид системы заземления (режим нейтрали), который был принят при проектировании НКУ;
p) размеры, приводимые в следующей последовательности: высота, ширина (или длина), глубина;
q) масса;
r) вид внутреннего разделения;
s) типы электрических соединений функциональных блоков;
t) окружающая среда 1 или 2.
[Перевод Интент]Тематики
- НКУ (шкафы, пульты,...)
EN
Русско-английский словарь нормативно-технической терминологии > электрические характеристики НКУ
119 обслуживание техническое
техническое обслуживание
Совокупность действий, выполняемых для сохранения или восстановления состояния изделия, в котором оно способно отвечать требованиям соответствующих технических условий и выполнять необходимые функции.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Текущие действия, выполняемые для сохранения в полной мере работоспособного состояния установленного электрооборудования.
[ ГОСТ Р МЭК 60050-426-2006]
техническое обслуживание
Комплекс операций и/или организационных действий, направленных на поддержание объекта в состоянии или возвращение объекта в состояние, в котором он способен выполнять требуемую функцию.
[ОСТ 45.152-99 ]
обслуживание техническое
Комплекс работ для поддержания исправности или работоспособности машин и оборудования при их эксплуатации, хранении и транспортировании
[Терминологический словарь по строительству на 12 языках (ВНИИИС Госстроя СССР)]EN
maintenance
1. All action taken to retain materiel in or to restore it to a specified condition. It includes: inspection, testing, servicing, classification as to serviceability, repair, rebuilding, and reclamation.
2. All supply and repair action taken to keep a force in condition to carry out its mission.
3. The routine recurring work required to keep a facility (plant, building, structure, ground facility, utility system, or other real property) in such condition that it may be continuously utilized, at its original or designed capacity and efficiency, for its intended purpose.[Dictionary of Military and Associated Terms. US Department of Defense 2005]Тематики
- тех. обсл. и ремонт средств электросвязи
Синонимы
- ТО
EN
- backup
- concept maintenance
- engineering service
- machine servicing
- maintenance
- maintenance service
- maintenance support
- maintenance work
- maintenance works
- mechanical services
- servicing
- technical maintenance
DE
FR
Русско-французский словарь нормативно-технической терминологии > обслуживание техническое
120 Ring Main Unit
блок кольцевой магистрали
БКМ
-
[Интент]EN
ring main unit in electrical power distribution
A standard piece of switchgear in distribution systems comprising of switches for switching power cable rings and of switches in series with fuses for the protection of distrbution transformers. RMU: Ring Main Unit. RMU used for H.T.side. RMU is having 3no.s of switches(Circuit Breakers or Isolators or LBS), it is used for two inputs with mechanical or electrical interlock and one outgoing to the load. Either one input with two outgoings. RMU used for redundancy feeder's purpose.
Ring main unit is used in a secondary distribution system. It is basically used for an uninterrupted power supply. Alongside, it also protects your secondary side transformer from the occasional transient currents. Depending on your applications and loading conditons you can use a swicth fuse combination or a circuit breaker to protect the transformer. This transformer connected to the switch fuse/ circuit breaker is called your T off. In a common arrangement you have Load break swicthes on both the sides of your T off. Ring main Units come in standard ratings of 11/22/33 kV, 630/1250 A, 21 KA/3 secs.
[ http://wiki.answers.com/Q/What_is_a_ring_main_unit_in_electrical_power_distribution]Тематики
EN
Англо-русский словарь нормативно-технической терминологии > Ring Main Unit
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