-
41 conduit
изоляционная трубка
—
[Я.Н.Лугинский, М.С.Фези-Жилинская, Ю.С.Кабиров. Англо-русский словарь по электротехнике и электроэнергетике, Москва, 1999 г.]Тематики
- электротехника, основные понятия
EN
кабелепровод
Любой канал, обеспечивающий прокладку кабелей, в том числе, металлические и пластмассовые трубопроводы, рукава, каналы в полах, сотовые фальшполы, сетчатые лотки, желоба и кабель каналы (ISO/IEC 11801).
[ http://www.iks-media.ru/glossary/index.html?glossid=2400324]
кабелепровод
трасса
кабельный канал
Трасса или структура, предназначенная или используемая для прокладки и монтажа телекоммуникационных кабелей.
[ http://www.lanmaster.ru/SKS/DOKUMENT/568b.htm]Тематики
- СКС (структурированные кабельные системы)
- электропроводка, электромонтаж
EN
кабельная канализация
—
[Л.Г.Суменко. Англо-русский словарь по информационным технологиям. М.: ГП ЦНИИС, 2003.]Тематики
EN
кабельный канал
Кабельным каналом называется закрытое и заглубленное (частично или полностью) в грунт, пол, перекрытие и т. п. непроходное сооружение, предназначенное для размещения в нем кабелей, укладку, осмотр и ремонт которых возможно производить лишь при снятом перекрытии.
[ПУЭ. Раздел 2]
кабельный канал
Элемент системы электропроводки, расположенный над землей или полом или в земле или в полу, открытый, вентилируемый или замкнутый, размеры которого не позволяют вход людей, но обеспечивают доступ к трубам и (или) кабелям по всей длине в процессе монтажа и после него.
Примечание - Кабельный канал может составлять или не составлять часть конструкции здания
[ ГОСТ Р МЭК 60050-826-2009]
канал кабельный
Подземный непроходной канал, предназначенный для размещения электрических кабелей
[Терминологический словарь по строительству на 12 языках (ВНИИИС Госстроя СССР)]EN
cable channel
element of a wiring system above or in the ground or floor, open, ventilated or closed, and having dimensions which do not permit the entry of persons but allow access to the conduits and/or cables throughout their length during and after installation
NOTE – A cable channel may or may not form part of the building construction.
[IEV number 826-15-06]FR
caniveau, m
élément de canalisation situé au-dessus ou dans le sol ou le plancher, ouvert, ventilé ou fermé, ayant des dimensions ne permettant pas aux personnes d'y circuler, mais dans lequel les conduits ou câbles sont accessibles sur toute leur longueur, pendant et après installation
NOTE – Un caniveau peut ou non faire partie de la construction du bâtiment.
[IEV number 826-15-06]
Кабельные каналы:
а — лотковый типа ЛК; б — из сборных плит типа СК:1 — лоток; 2 — плита перекрытия; 3 — подготовка; 4 — плита стеновая; 5 — основание
Высота кабельных каналов в свету не ограничивается, но бывает не более 1200 мм. Ширина каналов определяется в зависимости от размеров применяемых кабельных конструкций из условия сохранения прохода не менее 300 мм при глубине канала до 600 мм, 450 мм — от более 600 до 900 мм, 600 мм при более 900 мм.
Полы в каналах выполняют с уклоном не менее 0,5% в сторону водосборников или ливневой канализации.
Для крепления кабельных конструкций в стенах каналов через каждые 0,8—1 м (по длине) устанавливают закладные детали. При заводском изготовлении стеновых панелей детали устанавливают на предприятии-изготовителе. Закладные детали в каналах глубиной до 600 мм располагают в один ряд, при большей глубине каналов — в два ряда.
В местах поворота и разветвления трассы устраивают уширительные камеры, размеры которых выбирают с учетом допускаемого радиуса изгиба прокладываемого кабеля.
[ http://forca.ru/knigi/oborudovanie/priemka-zdaniy-i-sooruzheniy-pod-montazh-elektrooborudovaniya-11.html]Недопустимые, нерекомендуемые
Примечание(1)- Мнение автора карточкиТематики
- кабели, провода...
- электропроводка, электромонтаж
- электроустановки
Обобщающие термины
EN
- cable channel
- cable duct
- cable trench
- cabling
- conduit
- duct
- electric raceway
- raceway
- trench for cabling
DE
FR
- caniveau du câble
- caniveau, m
- conduite du câble
труба
Компонентзащищеннойтрубной электропроводки, имеющий, как правило, круглое поперечное сечение, предназначенный для прокладки изолированных проводов и(или) кабелей в электрических или коммуникационных установках, допускающий их затяжку в него и(или) их замену.
ПримечаниеСоединения труб должны быть достаточно плотными, чтобы изолированные провода и (или) кабели могли быть только затянуты, но не введены сбоку в просвет между трубами.
Трубы должны располагаться достаточно близко друг от друга, так чтобы отсутствовала возможность затянуть изолированные провода и (или) кабели в просвет между ними.
[ ГОСТ Р МЭК 60050-826-2009]
трубопроводтруба
Закрытый элемент кабельной конструкцииКомпонент трубной электропроводки круглого или иного сечения для прокладки в электрических установках кабелей и/или изолированных проводови/или кабелей в электрических установках,позволяющий производить ихвыемкузатяжку и/или замену.
Примечание
Трубопроводы должны быть закрыты таким образом, чтобы имелась возможность вставлять в них изолированные провода и/или кабели.
Трубы должны располагаться достаточно близко друг от друга, так чтобы отсутствовала возможность затянуть изолированные провода и (или) кабели в просвет между ними.
[ ГОСТ Р МЭК 60204-1-2007]
Примечание. Синим цветом обозначен вариант, предлагаемый автором карточки.EN
conduit
a part of a closed wiring system of generally circular cross section for insulated conductors and/or cables in electrical or communication installations, allowing them to be drawn in and/or replaced
Source: 826-06-03 MOD
[IEV number 442-02-03]
conduit
part of a closed wiring system of circular or non-circular cross-section for insulated conductors and/or cables in electrical installations, allowing them to be drawn in and/or replaced
NOTE Conduits should be sufficiently close-jointed so that the insulated conductors and/or cables can only be drawn in and not inserted laterally.
[IEV 826-06-03]
[IEC 60204-1-2006]
raceway
A tube that encloses and protects electric wires.
[ http://www.answers.com/topic/raceway]FR
conduit
élément d'un système de canalisation fermé de section droite généralement circulaire, destiné à la mise en place par tirage ou au remplacement des conducteurs ou des câbles isolés dans les installations électriques ou de télécommunication
Source: 826-06-03 MOD
[IEV number 442-02-03]См. также пластмассовые трубы для электропроводок
См. также стальные трубы для электропроводок
4.1. Для прокладки проводов и кабелей необходимо применять специальные трубы для электропроводок: гладкие из непластифицированного ПВХ по ТУ 6-19-215-86, прил. 2; гладкие из вторичного ПЭ по ТУ 63.178-103-85, прил. 3; гладкие из наполненного ПЭ по ТУ 6-19-051-575-85, прил. 4; гофрированные из НПВХ по ТУ 6-19-051-419-84, прил. 5; гофрированные из ПЭ по ТУ 6-19-051-518-87, прил.6; гофрированные из вторичного ПЭ по ТУ 63.178-117-87, прил.7. При отсутствии указанных труб применяют технологические трубы: гладкие напорные из НПВХ по ТУ 6-19-231-87, прил.8; гладкие напорные из ПЭ низкого и высокого давления по ГОСТ 18599-83, прил. 9; гладкие из ПП по ТУ 38-102-100-76, прил. 10; трубы из вторичного ПЭ по ТУ 6-19-133-79, прил. П.
...
4.3. Применяют также трубы стальные электросварные по ГОСТ 10704-76 сортамент, прил. 12, легкие и обыкновенные водогазопроводные по ГОСТ 3262-75*, прил.13.[Министерство архитектуры, строительства и жилищно-коммунального хозяйства. Концерн «ЭЛЕКТРОМОНТАЖ». Инструкция по монтажу электропроводок в трубах]
Недопустимые, нерекомендуемые
Примечание(1)- Мнение автора карточкиТематики
- электропроводка, электромонтаж
Синонимы
EN
DE
FR
Англо-русский словарь нормативно-технической терминологии > conduit
-
42 electrical
1) электрический
2) электротехнический
– electrical compound
– electrical conduction
– electrical engineering
– electrical precipitator
– electrical pressboard
– electrical resistivity
– electrical switching
– electrical unit
aircraft electrical system — <aeron.> сеть бортовая электрическая
electrical insulating material — электроизоляционный материал
vertical electrical logging — <energ.> зондирование вертикально-электрическое
-
43 slab
1) плита; панель; плита дорожного покрытия; панель перекрытия3) горбыль•- anchor slab - apron slab - armoured concrete slab - back slab - balcony slab - beam slab - bending slab - building slab - cement slab - cladding slab - composite slab - concrete slab - concrete pavement slab - continuous slab - continuous foundation slab - cored slab - cork slab - corner slab - cornice slab - crest slab - cross slab - curb slab - deck slab of dam - face slab - facing slab - fibre reinforced gypsum slab - filler-concrete slab - fixed-edge slab - floating slab - floor slab - floor slab of a bridge - grade slab - ground slab - gunited slab - heat insulating slab - laminated slab - large slab - lift slab - load-bearing wall slabs - marble wall slab - mineral wool slab - multilayer slab - one-way slab - pavement slab - paving slab - peat slab - pillar wall slab - plaster slab - plinth slab - precast slab - prefabricated slabs - ready-made slab - reinforced-concrete slab - ribbed slab - road slab - roadway slab - rolled slab - roof slab - sandwich slab - sheet slab - shell slab - short span slab - side slab - single-layer slab - sluice slab - sound insulating slab - sound isolation slab - spillway slab - stiffened slab - T-beam floor slab - test slab - thickened edge slab - thin slab - three-layer slab - toe slab - truss slab - two-way slab - uniform road slab - uniform thickness slab - upstream-deck slab - ventilation slab - wall slab - wall heating slab - window slab - wind-protective slab - wood-based slab - woodfibre slab - woodwool slabslab with stiffened edges — плита с укреплёнными краями; плита с жёстко заделанными краями
* * *1. плита ( элемент конструкции)2. горбыль ( пиломатериал)slab over basement — надподвальная плита, плита подвального перекрытия
slab rested on loose fill material — плита ( пола), опирающаяся на насыпной грунт
slab shotcreted over expanded metal — бетонная плита, выполненная методом торкретирования поверх просечно-вытяжного настила; торкрет-бетонная плита, армированная просечно-вытяжным настилом
slab simply supported on four sides — прямоугольная плита, свободно [шарнирно] опёртая по четырём сторонам
- approach slabslab spanning in two directions — плита, работающая в двух направлениях
- apron slab
- balcony slab
- basement slab
- beam slab
- beam and girder slab
- brick-lined concrete slab
- bridge deck slab
- compressed straw slab
- concrete slab
- concrete slab on grade
- continuous slab
- deck slab
- edge supported slab
- equalizing slab
- fixed-edge slab
- flat slab
- floating slab
- floor slab
- foundation slab
- ground slab
- heat-insulating slab
- hollow core slab
- hollow-tile floor slab
- infinite slab
- in-situ concrete slab
- leftward skew slab
- lift slab
- marked out facing slab
- monolithic slab and foundation slab
- mud slab
- paving slab
- plaster slab
- post-tensioned slab
- post-tension slab
- restrained slab
- ribbed slab above basement
- roof slab
- sandwich slab
- semi-infinite slab
- short span slab
- simply supported slab
- skew slab
- solid slab
- spillway slab
- structural slab
- terrazzo facing slab
- terrazzo slab
- two-way slab
- two-way ribbed flat slab
- two-way ribbed slab
- unstiffened edge slab
- upstanding beam slab
- upstand beam slab
- upstream-deck slab
- waffle slab
- wood-fiber slab -
44 electrical
электрический; электротехническийaircraft electrical system — аэро сеть бортовая электрическая
vertical electrical logging — энерг. зондирование вертикально-электрическое
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45 cable
m.1 cable, lead ( Elec & computing).se le cruzaron los cables y la pegó in a moment of madness, he hit herechar un cable (informal figurative) to help out, to lend a hand2 cable.3 cable.televisión por cable cable televisioncable de fibra óptica fiber-optic cable4 cablegram, cable.* * *1 (cablegrama) cablegram, cable————————1 (maroma) cable\echarle un cable a alguien familiar to give somebody a hand* * *noun m.1) cable2) wire* * *SM1) (Elec) (=hilo) wire; [con cubierta aislante] cableel cable del micrófono/amplificador — the microphone/amplifier cable o lead
- se le cruzaron los cables2) (Mec) [de acero] cable- echar un cable a algncable de remolque — towline, towrope
3) (Telec) cable, wiretelevisión por cable — cable television, cable TV
cable de fibra óptica — fibreoptic cable, optical fibre, optical fiber (EEUU)
4) (=cablegrama) cable* * *1)a) (Elec, Telec) cablecruzársele or (Méx) cuatrapeársele los cables a alguien — (fam) to get mixed up
b) (para levantar, tirar) cableecharle un cable a alguien — (fam) to help somebody out, give somebody a hand
2) (ant) ( telegrama) cable, wire* * *= cable, cord, wire, flex.Ex. The OCLC Europe network is connected to the OCLC computer system in the US by a dedicated link via an undersea cable.Ex. The cord which trips its shutter may reach down a man's sleeve within easy reach of his fingers.Ex. The second title may be indexed under: wire, rope, lubrication, corrosion, protection.Ex. This type of flex should never be repaired or joined by using insulating tape.----* arrancar con cables = jump-start [jump start].* arranque con cables = jump-starting [jumpstarting].* cable coaxial = coaxial cabling, coaxial cable.* cable con corriente = live wire.* cable de acero = wire rope.* cable de detonación = tripwire.* cable de fibra óptica = optical fibre cable, fibre optic cable.* cable de pelos = stranded wire.* cable de telecomunicaciones = telecommunications cable.* cable de teléfono = phone cord.* cable de tracción = tripwire.* cable eléctrico = power cable, power line.* cable híbrido de fibra de vidrio y coaxial = hybrid fiber-coax (HFC).* cable metálico = wire rope.* cable óptico = optical cable.* cable plano = flat wire.* cables = cabling.* cable submarino = undersea cable.* compañía de televisión por cable = cable company.* con cable = corded.* conectado por cable = wired-up, hardwired [hard wired], wired, wireline.* conexión de cables = wiring.* noticia por cable = newswire.* noticias por cable = cable news.* por cable = wireline, corded.* red por cable = cable network.* sin cables = wireless.* sistema de cables eléctricos = electrical wiring.* televisión por cable = cable television (CATV), CATV (cable television), cable TV.* * *1)a) (Elec, Telec) cablecruzársele or (Méx) cuatrapeársele los cables a alguien — (fam) to get mixed up
b) (para levantar, tirar) cableecharle un cable a alguien — (fam) to help somebody out, give somebody a hand
2) (ant) ( telegrama) cable, wire* * *= cable, cord, wire, flex.Ex: The OCLC Europe network is connected to the OCLC computer system in the US by a dedicated link via an undersea cable.
Ex: The cord which trips its shutter may reach down a man's sleeve within easy reach of his fingers.Ex: The second title may be indexed under: wire, rope, lubrication, corrosion, protection.Ex: This type of flex should never be repaired or joined by using insulating tape.* arrancar con cables = jump-start [jump start].* arranque con cables = jump-starting [jumpstarting].* cable coaxial = coaxial cabling, coaxial cable.* cable con corriente = live wire.* cable de acero = wire rope.* cable de detonación = tripwire.* cable de fibra óptica = optical fibre cable, fibre optic cable.* cable de pelos = stranded wire.* cable de telecomunicaciones = telecommunications cable.* cable de teléfono = phone cord.* cable de tracción = tripwire.* cable eléctrico = power cable, power line.* cable híbrido de fibra de vidrio y coaxial = hybrid fiber-coax (HFC).* cable metálico = wire rope.* cable óptico = optical cable.* cable plano = flat wire.* cables = cabling.* cable submarino = undersea cable.* compañía de televisión por cable = cable company.* con cable = corded.* conectado por cable = wired-up, hardwired [hard wired], wired, wireline.* conexión de cables = wiring.* noticia por cable = newswire.* noticias por cable = cable news.* por cable = wireline, corded.* red por cable = cable network.* sin cables = wireless.* sistema de cables eléctricos = electrical wiring.* televisión por cable = cable television (CATV), CATV (cable television), cable TV.* * *Acruzársele or ( Méx) cuatrapeársele los cables a algn ( fam): se me cruzaron los cables I got mixed up2 (para levantar, tirar) cableel cable del ancla the anchor chainecharle un cable a algn ( fam); to help sb out, give sb a handCompuestos:feeder cableshielded cable● cable coaxial or coaxilcoaxial cable( Elec) supply lineB ( ant) (telegrama) cable, wire* * *
cable sustantivo masculino (Elec, Telec) cable
cable sustantivo masculino
1 cable
enviar un cable, to cable, wire
2 (de un aparato eléctrico) wire
♦ Locuciones: familiar cruzársele a alguien los cables, to get one's wires crossed: (ofuscarse) se me cruzaron los cables y le di una bofetada; in a moment of blind rage I slapped his face
(confundirse, desorientarse) se me cruzaron los cables y no supe qué responder, I got all mixed up and I didn't know what to say
echarle un cable a alguien, to give sb a hand
' cable' also found in these entries:
Spanish:
cabo
- carrete
- ceder
- enrollar
- gorda
- gordo
- hilo
- línea
- maroma
- retorcerse
- revestimiento
- teleférico
- tendida
- tendido
- tensa
- tensar
- tenso
- tirante
- alargar
- andarivel
- cablevisión
- comba
- combarse
- enganchar
- enrollado
- enroscar
- estirar
- extensión
- extremo
- funicular
- grapa
- revestir
- roer
- rollo
- soltar
- televisión
- tender
- tocar
English:
cable
- cable car
- cable television
- cord
- extension cable
- extension cord
- flex
- lead
- line
- live
- live wire
- overhead
- sheath
- slack
- slacken
- towrope
- wire
- booster
- lay
- main
- run
- sink
- telegraph
- tow
- way
* * *cable nm1. [de puente, ascensor, teleférico, ancla] cable;Fam cable aéreo overhead cable;cable submarino submarine o undersea cable2. [conductor eléctrico] [para conectar] cable, lead;[dentro de aparato] wire; Famse le cruzaron los cables [se confundió] he got mixed up;se le cruzaron los cables y le pegó in a moment of madness, he hit her;RP Famandar o [m5] estar con los cables pelados to have got out of the wrong side of bed, to be like a bear with a sore head;cable coaxial coaxial cable;cable de serie serial cable3. [de fibra óptica] cable;una red de cable a cable network;un operador de cable a cable company;televisión por cable cable televisioncable de fibra óptica fibre optic cable;cable óptico optical cable4. [telegrama] Br telegram, US cable;* * *m1 EL cable;se le cruzaron los cables fam he got mixed up2 MAR line, rope;echar un cable a alguien give s.o. a hand* * *cable nm: cable* * *cable n cable / lead -
46 длительный допустимый ток
- Strombelastbarkeit, f
- Dauerstrombelastbarkeit, f
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Русско-немецкий словарь нормативно-технической терминологии > длительный допустимый ток
-
47 courant admissible, m
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Франко-русский словарь нормативно-технической терминологии > courant admissible, m
-
48 courant permanent admissible, m
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Франко-русский словарь нормативно-технической терминологии > courant permanent admissible, m
-
49 Dauerstrombelastbarkeit, f
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Немецко-русский словарь нормативно-технической терминологии > Dauerstrombelastbarkeit, f
-
50 Strombelastbarkeit, f
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Немецко-русский словарь нормативно-технической терминологии > Strombelastbarkeit, f
-
51 длительный допустимый ток
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Русско-английский словарь нормативно-технической терминологии > длительный допустимый ток
-
52 длительный допустимый ток
- courant permanent admissible, m
- courant admissible, m
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Русско-французский словарь нормативно-технической терминологии > длительный допустимый ток
-
53 continuous current-carrying capacity
длительная пропускная способность по току
—
[Я.Н.Лугинский, М.С.Фези-Жилинская, Ю.С.Кабиров. Англо-русский словарь по электротехнике и электроэнергетике, Москва, 1999 г.]Тематики
- электротехника, основные понятия
EN
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Англо-русский словарь нормативно-технической терминологии > continuous current-carrying capacity
-
54 ampacity (US)
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
Англо-русский словарь нормативно-технической терминологии > ampacity (US)
-
55 continuous current
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
непрерывный ток
—
[Я.Н.Лугинский, М.С.Фези-Жилинская, Ю.С.Кабиров. Англо-русский словарь по электротехнике и электроэнергетике, Москва, 1999]Тематики
- электротехника, основные понятия
EN
Англо-русский словарь нормативно-технической терминологии > continuous current
-
56 current-carrying capacity
(длительный) допустимый ток
Максимальное значение электрического тока, который может протекать длительно по проводнику, устройству или аппарату при определенных условиях без превышения определенного значения их температуры в установившемся режиме
[ ГОСТ Р МЭК 60050-826-2009]
Этот ток обозначают IZ
[ ГОСТ Р 50571. 1-2009 ( МЭК 60364-1: 2005)]EN
(continuous) current-carrying capacity
ampacity (US)
maximum value of electric current which can be carried continuously by a conductor, a device or an apparatus, under specified conditions without its steady-state temperature exceeding a specified value
[IEV number 826-11-13]
ampacity
The current in amperes that a conductor can carry continuously under the conditions of use without exceeding its temperature rating.
[National Electrical Cod]FR
courant (permanent) admissible, m
valeur maximale du courant électrique qui peut parcourir en permanence, un conducteur, un dispositif ou un appareil, sans que sa température de régime permanent, dans des conditions données, soit supérieure à la valeur spécifiée
[IEV number 826-11-13]Ampacity, the term is defined as the maximum amount of current a cable can carry before sustaining immediate or progressive deterioration. Also described as current rating or current-carrying capacity, is the RMS electric current which a device can continuously carry while remaining within its temperature rating. The ampacity of a cable depends on:
- its insulation temperature rating;
- conductor electrical properties for current;
- frequency, in the case of alternating currents;
- ability to dissipate heat, which depends on cable geometry and its surroundings;
- ambient temperature.
Electric wires have some resistance, and electric current flowing through them causes voltage drop and power dissipation, which heats the cable. Copper or aluminum can conduct a large amount of current before melting, but long before the conductors melt, their insulation would be damaged by the heat.
The ampacity for a power cable is thus based on physical and electrical properties of the material & construction of the conductor and of its insulation, ambient temperature, and environmental conditions adjacent to the cable. Having a large overall surface area may dissipate heat well if the environment can absorb the heat.
In a long run of cable, different conditions govern, and installation regulations normally specify that the most severe condition along the run governs the cable's rating. Cables run in wet or oily locations may carry a lower temperature rating than in a dry installation. Derating is necessary for multiple circuits in close proximity. When multiple cables are near, each contributes heat to the others and diminishes the amount of cooling air that can flow past the individual cables. The overall ampacity of the insulated conductors in a bundle of more than 3 must be derated, whether in a raceway or cable. Usually the de-rating factor is tabulated in a nation's wiring regulations.
Depending on the type of insulating material, common maximum allowable temperatures at the surface of the conductor are 60, 75 and 90 degrees Celsius, often with an ambient air temperature of 30°C. In the U.S., 105°C is allowed with ambient of 40°C, for larger power cables, especially those operating at more than 2 kV. Likewise, specific insulations are rated 150, 200 or 250°C.
The allowed current in cables generally needs to be decreased (derated) when the cable is covered with fireproofing material.
For example, the United States National Electric Code, Table 310-16, specifies that up to three 8 AWG copper wires having a common insulating material (THWN) in a raceway, cable, or direct burial has an ampacity of 50 A when the ambient air is 30°C, the conductor surface temperature allowed to be 75°C. A single insulated conductor in air has 70 A rating.
Ampacity rating is normally for continuous current, and short periods of overcurrent occur without harm in most cabling systems. The acceptable magnitude and duration of overcurrent is a more complex topic than ampacity.
When designing an electrical system, one will normally need to know the current rating for the following:- Wires
- Printed Circuit Board traces, where included
- Fuses
- Circuit breakers
- All or nearly all components used
Some devices are limited by power rating, and when this power rating occurs below their current limit, it is not necessary to know the current limit to design a system. A common example of this is lightbulb holders.
[http://en.wikipedia.org/wiki/Ampacity]
Тематики
- электротехника, основные понятия
Синонимы
EN
DE
- Dauerstrombelastbarkeit, f
- Strombelastbarkeit, f
FR
- courant admissible, m
- courant permanent admissible, m
предельно допустимый ток
—
[Я.Н.Лугинский, М.С.Фези-Жилинская, Ю.С.Кабиров. Англо-русский словарь по электротехнике и электроэнергетике, Москва, 1999 г.]Тематики
- электротехника, основные понятия
EN
прочность печатной платы к токовой нагрузке
Свойство печатной платы сохранять электрические и механические характеристики после воздействия максимально допустимой токовой нагрузки на печатный проводник или металлизированное отверстие печатной платы.
[ ГОСТ Р 53386-2009]Тематики
EN
Англо-русский словарь нормативно-технической терминологии > current-carrying capacity
-
57 NIS
1) Медицина: (New Independent States) ННГ (Новые Независимые Государства)2) Военный термин: NATO identification system, NIPCImagery System, National Imagery Segment, National Input Segment, National Intelligence Service, Naval Intelligence School, Network Information System, Non-Imaging Sensors, national intelligence summary, national intelligence survey, night illumination system, not in stock, NPIC Information System (former NDS)3) Техника: nuclear instrumentation system4) Сельское хозяйство: National Irrigation System5) Юридический термин: New Israeli Shekel6) Экономика: национальные информационные системы (National Information Systems)7) Сокращение: NATO International Staff, National Information System, National Institute of Science, National Insurance Scheme, Naval Investigative Service (US Navy), Net Identification Sign, Network Information System (formerly yp), Newly Independent States, News and Information Service8) Электроника: Normal Insulating And Superconducting9) Вычислительная техника: Network Information Service (NSF), Network Information System (Unix), Network Information System (formerly yp), network information service10) Космонавтика: national information service11) Валютные операции: New Israeli sheqel, израильский шекель12) Сетевые технологии: Network Information Server, Network Information Services, сетевая информационная служба13) Контроль качества: not-in-stock14) Сахалин Р: Non Intrinsic Safety15) Сахалин Ю: non intrinsically safe16) Химическое оружие: New Independent States17) Макаров: неупругое рассеяние нейтронов18) Безопасность: Norton Internet Security19) Расширение файла: Network Information Service (Unix)20) Нефть и газ: Naftne Industrije Srbije21) Военно-политический термин: New Independent State22) NYSE. NOVA Corporation of Georgia23) Федеральное бюро расследований: Naval Investigative Service -
58 Nis
1) Медицина: (New Independent States) ННГ (Новые Независимые Государства)2) Военный термин: NATO identification system, NIPCImagery System, National Imagery Segment, National Input Segment, National Intelligence Service, Naval Intelligence School, Network Information System, Non-Imaging Sensors, national intelligence summary, national intelligence survey, night illumination system, not in stock, NPIC Information System (former NDS)3) Техника: nuclear instrumentation system4) Сельское хозяйство: National Irrigation System5) Юридический термин: New Israeli Shekel6) Экономика: национальные информационные системы (National Information Systems)7) Сокращение: NATO International Staff, National Information System, National Institute of Science, National Insurance Scheme, Naval Investigative Service (US Navy), Net Identification Sign, Network Information System (formerly yp), Newly Independent States, News and Information Service8) Электроника: Normal Insulating And Superconducting9) Вычислительная техника: Network Information Service (NSF), Network Information System (Unix), Network Information System (formerly yp), network information service10) Космонавтика: national information service11) Валютные операции: New Israeli sheqel, израильский шекель12) Сетевые технологии: Network Information Server, Network Information Services, сетевая информационная служба13) Контроль качества: not-in-stock14) Сахалин Р: Non Intrinsic Safety15) Сахалин Ю: non intrinsically safe16) Химическое оружие: New Independent States17) Макаров: неупругое рассеяние нейтронов18) Безопасность: Norton Internet Security19) Расширение файла: Network Information Service (Unix)20) Нефть и газ: Naftne Industrije Srbije21) Военно-политический термин: New Independent State22) NYSE. NOVA Corporation of Georgia23) Федеральное бюро расследований: Naval Investigative Service -
59 ACS
- система контроля и управления доступом
- система дополнительного или вспомогательного охлаждения ядерного реактора
- система аварийного теплоносителя ядерного реактора
- сервер управления доступом
- сервер вызова доступа
- секция доступа к каналу
- периодический впрыск теплоносителя в активную зону ядерного реактора при аварии
- НКУ распределения и управления для строительных площадок (НКУ СП)
- конструкция, расположенная над активной зоной ядерного реактора
- доступ
- выбор ограничений
- Американское химическое общество
- автоматический диспетчер вызовов
- автоматизированная система управления
- Acs
Американское химическое общество
—
[А.С.Гольдберг. Англо-русский энергетический словарь. 2006 г.]Тематики
EN
автоматизированная система, управляющая
АСУ
Управляющая система, часть функций которой, главным образом функцию принятия решений, выполняет человек-оператор.
Примечание
В зависимости от объектов управления различают, например: АСУ П, когда объектом управления является предприятие; АСУ ТП, когда объектом управления является технологический процесс; ОАСУ, когда объектом управления является организационный объект или комплекс.
[Сборник рекомендуемых терминов. Выпуск 107. Теория управления. Академия наук СССР. Комитет научно-технической терминологии. 1984 г.]
автоматизированная система управления
АСУ
Совокупность математических методов, технических средств (компьютеров, средств связи, устройств отображения информации и т. д.) и организационных комплексов, обеспечивающих рациональное управление сложным объектом (процессом) в соответствии с заданной целью. АСУ принято делить на основу и функциональную часть. В основу входят информационное, техническое и математическое обеспечение. К функциональной части относят набор взаимосвязанных программ, автоматизирующих конкретные функции управления (планирование, финансово-бухгалтерскую деятельность и др.). Различают АСУ объектами (технологическими процессами - АСУТП, предприятием - АСУП, отраслью - ОАСУ) и функциональными автоматизированными системами, например, проектирования, расчетов, материально-технического и др. обеспечения.
[ http://www.morepc.ru/dict/]
автоматизированная система управления
АСУ
Система управления, в которой применяются современные автоматические средства обработки данных и экономико-математические методы для решения основных задач управления производственно-хозяйственной деятельностью. Это человеко-машинная система: в ней ряд операций и действий передается для исполнения машинам и другим устройствам (особенно это относится к так называемым рутинным, повторяющимся, стандартным операциям расчетов), но главное решение всегда остается за человеком. Этим АСУ отличаются от автоматических систем, т.е. таких технических устройств, которые действуют самостоятельно, по установленной для них программе, без вмешательства человека. АСУ подразделяются прежде всего на два класса: автоматизированные системы организационного управления и автоматизированные системы управления технологическими процессами (последние часто бывают автоматическими, первые ими принципиально быть не могут). Традиционно термин АСУ закрепился за первым из названных классов. Отличие АСУ от обычной, неавтоматизированной, но также использующей ЭВМ, системы управления показано на рис. А.1, а, б. Стрелками обозначены потоки информации. В первом случае компьютер используется для решения отдельных задач управления, например для производства плановых расчетов, результаты которых рассматриваются органом управления и либо принимаются, либо отвергаются. При этом необходимые данные собираются специально для решения каждой задачи и вводятся в компьютер, а потом за ненадобностью уничтожаются. Во втором случае существенная часть информации от объекта управления собирается непосредственно вычислительным центром, в том числе по каналам связи. При этом нет необходимости каждый раз вводить в компьютер все данные: часть из них (цены, нормативы и т. п.) хранится в ее запоминающем устройстве. Из вычислительного центра выработанные задания поступают, с одной стороны, в орган управления, а с другой (обычно через контрольное звено) — к объекту управления. В свою очередь информация, поступающая от объекта управления, влияет на принимаемые решения, т.е. здесь используется кибернетический принцип обратной связи. Это — АСУ. Принято рассматривать каждую АСУ одновременно в двух аспектах: с точки зрения ее функций — того, что и как она делает, и с точки зрения ее схемы, т.е. с помощью каких средств и методов эти функции реализуются. Соответственно АСУ подразделяют на две группы подсистем — функциональные и обеспечивающие. Создание АСУ на действующем экономическом объекте (в фирме, на предприятии, в банке и т.д.) — не разовое мероприятие, а длительный процесс. Отдельные подсистемы АСУ проектируются и вводятся в действие последовательными очередями, в состав функций включаются также все новые и новые задачи; при этом АСУ органически «вписывается» в систему управления. Обычно первые очереди АСУ ограничиваются решением чисто информационных задач. В дальнейшем их функции усложняются, включая использование оптимизационных расчетов, элементов оптимального управления. Степень участия АСУ в процессах управления может быть весьма различной, вплоть до самостоятельной выдачи компьютером, на основе получаемых им данных, оперативных управляющих «команд». Поскольку внедрение АСУ требует приспособления документации для машинной обработки, создаются унифицированные системы документации, а также классификаторы технико-экономической информации и т.д. Экономическая эффективность АСУ определяется прежде всего ростом эффективности самого производства в результате лучшей загрузки оборудования, повышения ритмичности, сокращения незавершенного производства и других материальных запасов, повышения качества продукции. РисА.1. Системы управления с использованием компьютеров а — неавтоматизированная, б — автоматизированная; I — управляющий центр; II — автоматизированная управляемая система (например, производство), III — контроль; тонкая черная стрелка — канал непосредственного управления компьютером некоторыми технологическими процессами (бывает не во всех АСУ); тонкая пунктирная стрелка показывает ту часть информации, которая поступает непосредственно в центр, минуя компьютер.
[ http://slovar-lopatnikov.ru/]Тематики
Синонимы
EN
автоматический диспетчер вызовов
Устройство автоматической обработки входящих вызовов в соответствии с заданной программой переадресации и приоритетами. Такое устройство может работать в составе УАТС или подключаться непосредственно к входящим линиям. В его задачи входит только переадресация, а такие функции, как запись вызова, его удержание на линии и другие в ACS не поддерживаются.
[Л.М. Невдяев. Телекоммуникационные технологии. Англо-русский толковый словарь-справочник. Под редакцией Ю.М. Горностаева. Москва, 2002]Тематики
- электросвязь, основные понятия
EN
выбор ограничений
—
[Я.Н.Лугинский, М.С.Фези-Жилинская, Ю.С.Кабиров. Англо-русский словарь по электротехнике и электроэнергетике, Москва, 1999 г.]Тематики
- электротехника, основные понятия
EN
доступ
обращение
-.
[ http://www.morepc.ru/dict/]
доступ
Процедура обращения абонента, процесса, устройства к общесетевым ресурсам системы.
[Л.М. Невдяев. Телекоммуникационные технологии. Англо-русский толковый словарь-справочник. Под редакцией Ю.М. Горностаева. Москва, 2002]Тематики
- информационные технологии в целом
- электросвязь, основные понятия
Синонимы
EN
конструкция, расположенная над активной зоной ядерного реактора
—
[А.С.Гольдберг. Англо-русский энергетический словарь. 2006 г.]Тематики
EN
НКУ распределения и управления для строительных площадок (НКУ СП)
Комбинация одного или нескольких трансформаторных устройств или коммутационных аппаратов с устройствами управления, измерения, сигнализации, защиты и регулирования со всеми внутренними электрическими и механическими соединениями и конструктивными элементами, разработанная и изготовленная для применения на любых строительных площадках — для наружной и внутренней установки.
[ ГОСТ Р 51321. 4-2000 ( МЭК 60439-4-90)]EN
low-voltage switchgear and controlgear assembly for construction sites (ACS)
combination of one or several transforming or switching devices with associated control, measuring, signalling, protective and regulating equipment complete with all their internal electrical and mechanical connections and structural parts, designed and built for use on all construction sites, indoors and outdoors
[IEC 60439-4, ed. 2.0 (2004-06)]FR
ensemble d'appareillage à basse tension utilisé sur les chantiers (EC)
combinaison d'un ou de plusieurs appareils de transformation ou de connexion avec équipements associés de commande, de mesure, de signalisation, de protection et de régulation complètement assemblés avec toutes leurs liaisons internes électriques et mécaniques et leurs éléments de construction (voir 2.4), conçue et construite pour être utilisée sur tous les chantiers, à l'intérieur et à l'extérieur.
[IEC 60439-4, ed. 2.0 (2004-06)]
Рис. ABB
Рис. ABB
Рис. ABBНКУ СП, устанавливаемое на ножках
НКУ СП, закрепляемое на вертикальной поверхности
НКУ СП розеточное
Параллельные тексты EN-RU
Assemblies for construction sites have different dimensions, ranging from the simple socket-outlet units to proper distribution boards in metal enclosure or insulating material.
These assemblies are usually mobile.
The Standard IEC 60439-4 establishes the particular requirements for this type of assemblies, making specific reference to mechanical strength and resistance to corrosion.
[ABB]НКУ для строительных площадок имеют разные размеры и функции - от простых розеточных до распределительных панелей в металлической или пластмассовой оболочке.
Данные НКУ обычно являются переносными.
Стандарт МЭК 60439-4 устанавливает дополнительные требования для НКУ данного типа, особенно по механической прочности и коррозионной стойкости.
[Перевод Интент]Тематики
- НКУ (шкафы, пульты,...)
EN
- ACS
- assemblies for construction sites
- low-voltage switchgear and controlgear assembly for construction sites
FR
периодический впрыск теплоносителя в активную зону ядерного реактора при аварии
—
[А.С.Гольдберг. Англо-русский энергетический словарь. 2006 г.]Тематики
EN
секция доступа к каналу
Физический канал или набор каналов, соединяющий Оконечное оборудование передачи данных с (местной) Станцией коммутации. Сюда не входит никакая часть оборудования передачи данных или станции коммутации (МСЭ-Т Х.144, МСЭ-Т Х.145, МСЭ-Т Х.147).
[ http://www.iks-media.ru/glossary/index.html?glossid=2400324]Тематики
- электросвязь, основные понятия
EN
сервер вызова доступа
(МСЭ-Т Y.2261).
[ http://www.iks-media.ru/glossary/index.html?glossid=2400324]Тематики
- электросвязь, основные понятия
EN
сервер управления доступом
(МСЭ-Т M.3016).
[ http://www.iks-media.ru/glossary/index.html?glossid=2400324]Тематики
- электросвязь, основные понятия
EN
система аварийного теплоносителя ядерного реактора
—
[А.С.Гольдберг. Англо-русский энергетический словарь. 2006 г.]Тематики
EN
система дополнительного или вспомогательного охлаждения ядерного реактора
—
[А.С.Гольдберг. Англо-русский энергетический словарь. 2006 г.]Тематики
EN
система контроля и управления доступом
Совокупность совместно действующих технических средств (контроля и управления), предназначенных для контроля и управления доступом и обладающих технической, информационной, программной и эксплуатационной совместимостью.
[РД 25.03.001-2002]
система контроля доступа
система управления доступом
СКД
Одна из важнейших составляющих интегрированного комплекса систем и средств физической защиты. Системой контроля доступа называется совокупность программно-аппаратных средств и организационных мероприятий, с помощью которых решается задача контроля и управления посещением отдельных помещений, а также оперативный контроль персонала и времени его нахождения на территории объекта.
Интегрированная СКД реализуется, в общем случае, гармоничным взаимодействием интеллектуальных уровней управления:
(1) уровень систем - графический пользовательский интерфейс и сервер базы данных;
(2) уровень подсистем - главный контроллер (мультиплексор);
(3) уровень локальных процессоров - локальные контроллеры, охранные панели.
Базовыми компонентами системы контроля доступа, управляемы тремя уровнями управления, являются: считыватели и идентификаторы, исполнительные устройства контроля доступа (турникеты, барьеры, замки, шлюзовые кабины, шлагбаумы, и т.п.), специализированные обнаружители (обнаружители металлов, обнаружители ядерных материалов, обнаружители взрывчатых веществ).
[ http://datasheet.do.am/forum/22-4-1]Тематики
Синонимы
EN
Англо-русский словарь нормативно-технической терминологии > ACS
-
60 hydraulic
1) гидравлический
2) вододействующий
3) клепальный гидравлический
4) следящий
– hydraulic accumulator
– hydraulic actuator
– hydraulic air compressor
– hydraulic analogue
– hydraulic apparatus
– hydraulic booster
– hydraulic broom
– hydraulic classifier
– hydraulic clutch
– hydraulic coupling
– hydraulic cylinder
– hydraulic dredge
– hydraulic drive
– hydraulic elevator
– hydraulic engine
– hydraulic engineering
– hydraulic equipment
– hydraulic exponent
– hydraulic fill
– hydraulic gas dynamics
– hydraulic hammer
– hydraulic hoist
– hydraulic index
– hydraulic integrator
– hydraulic jet
– hydraulic jump
– hydraulic leak
– hydraulic motor
– hydraulic output
– hydraulic pickup
– hydraulic press
– hydraulic pump
– hydraulic ram
– hydraulic scales
– hydraulic screen
– hydraulic shock
– hydraulic sprayer
– hydraulic suppressor
– hydraulic system
– hydraulic systems
– hydraulic unclasp
– hydraulic winch
displacement hydraulic transmiss — гидростатическая гидропередача
hydraulic binding material — вяжущий гидравлический материал
hydraulic displacement transmission — <engin.> трансмиссия гидрообъемная
hydraulic grease gun — <tech.> гидротавотница
hydraulic riveting machine — клепальная гидравлическая машина
remote-cylinder hydraulic system — раздельно—агрегатная гидросистема
rotary-plunger hydraulic motor — радиально-поршневой гидромотор
swash-plate hydraulic motor — аксиально-поршневой гидромотор
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