Anong Laki ng AC Contactor ang Kailangan Ko? Motor kW-to-Amps, AC-1 hanggang AC-4 Ratings, at Pagpili ng Coil

AC contactor sizing guide showing motor kW-to-amps, AC-1 to AC-4 ratings, and coil selection

An AC contactor is an electrically controlled switch that uses a coil-driven electromagnet to make and break a power circuit on command, and it is built to do that thousands to millions of times without the contacts welding or wearing out. It switches load current when told to. It does not protect the circuit. Sizing it correctly means sizing it against the rating that applies to your actual load duty, not the highest number printed on the label.

A contactor marked 20 A is not a 20 A device for a motor. The same physical unit may be rated 20 A for a resistive heater and 9 A for a squirrel-cage motor, because motor inrush and inductive breaking punish the contacts far harder than a heater does. That single distinction causes more early contactor failures than any other selection error.

This guide covers what the contactor must carry, how to calculate it, which utilization category applies, and the pole, coil, auxiliary, life, and coordination checks that follow the ampere figure.

Before sizing anything, confirm that a contactor is the correct device for the job. Panel designs frequently fail because one component is expected to perform two unrelated functions.

DevicePrimary jobSwitching frequencyTrips on fault
AC contactorMake and break load current on commandDesigned for frequent cyclingNo. Requires a separate overload relay or breaker
General-purpose relayLow-power switching and signal controlRated for lighter dutyNo
MCB or MCCBProteksyon sa overcurrent at short-circuitOccasional operation, not routine cyclingYes
Motor starterContactor and overload relay in one assemblySame as contactorYes, through the overload relay
Soft starter or VFDControlled ramp of motor currentContinuous control rather than on/offVaries by model

If the question is how to switch a load on and off repeatedly on command, the answer is a contactor. If the question is what protects the circuit from overload, that is a different device. Treating the contactor as if it does both is one of the most common panel-design mistakes.

A general-purpose relay can close a circuit, but it is not built to do so at motor or heater current levels over the long run. Contactors are rated for mechanical life in the millions of operations, while general-purpose relays are rated for a small fraction of that under real electrical load. The difference lies in contact material, spring force, and arc suppression. Contactors use the contact geometry and, on larger frames, the arc chutes needed to break inductive motor current repeatedly without the contacts pitting or welding. A relay pushed into that duty usually fails by welding closed under load, which is a far worse failure mode than a contactor’s gradual wear.

A circuit breaker is designed to protect a circuit and to be operated occasionally, not to be cycled as part of normal automation logic. Using a breaker as a duty switch shortens its protective life and is not what it is rated for. The contactor and the protective device do two different jobs and belong in the same circuit together.

Cutaway diagram of an AC contactor showing arc chute, main contacts, movable crossbar, armature, return spring and coil
  1. The control signal energizes the coil. A control circuit, such as a PLC output, thermostat, or pushbutton logic, applies voltage to the coil at its rated coil voltage.
  2. The electromagnet pulls in the armature. The energized coil creates a magnetic field that draws a moving armature toward a fixed core.
  3. The main contacts close. The armature’s motion closes the main power contacts through a common crossbar, connecting the load to the supply.
  4. The auxiliary contacts change state. Small auxiliary contacts linked to the same armature open or close in step with the main contacts. They provide interlocking, indication, and confirmation to a PLC that the contactor actually closed.
  5. Spring force holds contact pressure. Stable contact pressure under vibration and load is what prevents contact bounce and resistive heating at the contact face.
  6. De-energizing the coil opens the circuit. When the control signal drops, the magnetic field collapses and a return spring pulls the armature back, opening the main contacts.
  7. Arc suppression handles the interruption. Opening a circuit under load, especially an inductive motor load, draws an arc across the separating contacts. Contact geometry and arc chutes extinguish that arc quickly enough to prevent damage on every cycle.

IEC 60947-4-1 defines utilization categories that describe how hard a load is on the contacts, not simply how many amperes it draws. This is the step most selection errors trace back to.

CategoryLoad typeSwitching dutyTypical application
AC-1Non-inductive or slightly inductive, high power factorNo significant inrushResistive heaters, HVAC heating banks, general lighting
AC-2Slip-ring (wound-rotor) motorsStarting and plugging under loadCranes, hoists
AC-3Squirrel-cage motorsStarting, and switching off a running motorPumps, fans, compressors
AC-4Squirrel-cage motorsJogging, plugging, rapid reversingElevators, conveyors, machine tools
Comparison of IEC 60947-4-1 utilization categories AC-1 to AC-4 with load types, typical applications and relative contact stress

The consequence is that a single contactor carries several different current ratings. A JUTRION JRC1-D09 is rated 20 A in category AC-1 and 9 A in category AC-3. Both figures describe the same physical device. Sizing a pump against the 20 A number puts the contactor at more than twice its motor-duty rating, and the contacts will show it.

Bar chart comparing JRC1-D09 contactor rated 20 A in category AC-1 versus 9 A in AC-3

Read every published rating together with the category it belongs to. A frame is not a crane model or a jogging model. It is one frame with several ratings, and the duty decides which rating applies to the project.


Use a verified full-load current directly when the project already provides one. When the data is given as motor power, convert it using the correct voltage and phase arrangement.

Here, I is line current in amperes, P is motor rated output power in kW, VLL is three-phase line-to-line voltage, V is single-phase voltage, cos φ is power factor, and η is efficiency.

Power factor for standard induction motors typically falls between 0.80 and 0.88, and efficiency between 0.85 and 0.93 depending on efficiency class. Use the nameplate values whenever they are available. The typical ranges are for preliminary work before the motor datasheet arrives.

For purely resistive single-phase loads such as heating elements, power factor and efficiency are effectively unity, and the expression reduces to I = P × 1,000 / V.

Ang JUTRION AC contactor sizing calculator performs the same calculation and returns a minimum AC-3 operational current. It is a starting point for the specification, not a substitute for the motor nameplate or the manufacturer’s rating tables.

Load typeConventional multiplierReason
Capacitor banksApproximately 1.5 × capacitor rated currentCapacitive inrush at switch-on is severe and very short
Transformers and welding setsApproximately 2 × rated currentMagnetizing inrush can reach many times steady-state current
Gas-discharge and HID lightingApproximately 1.1 to 1.4 × rated currentBallast inrush and warm-up behaviour
Poor cooling or densely packed enclosure110 to 120 percent of load rated currentElevated internal temperature reduces current capacity
Continuously running motor, long dutyContactor rated current reduced by approximately 30 percentSustained thermal loading of the contacts

A contactor’s rated current assumes the reference ambient temperature stated on its datasheet. Above that temperature, current-carrying capacity falls, but the derating slope is specific to the manufacturer and the frame. Use the derating curve from the actual product documentation rather than a generic percentage.

Two conditions apply regardless of product. First, base the calculation on the temperature inside the enclosure, not the room. A densely packed panel in a warm plant runs considerably hotter than ambient. Second, contactors mounted side by side with no spacing heat one another, so respect the manufacturer’s minimum spacing or derate further.

A three-phase centrifugal pump motor in an OEM water-treatment panel. Standard start and stop duty, approximately 20 starts per hour, panel ambient around 35 °C.

Step 1. Establish the utilization category. A squirrel-cage induction motor, started and stopped normally, is category AC-3. It is not AC-1, even though the load is described as a simple pump.

Step 2. Calculate full-load current. Nameplate values are 4 kW, 400 V, cos φ = 0.85, η = 0.90.

I = 4 × 1,000 / (1.732 × 400 × 0.85 × 0.90)

Working the denominator: 1.732 × 400 = 692.8, then × 0.85 = 588.9, then × 0.90 = 530.0.

I = 4,000 / 530.0 ≈ 7.6 A

Step 3. Select against the AC-3 rating. The requirement is a contactor whose AC-3 rating covers 7.6 A with margin. The JRC1-D09 is rated 9 A at AC-3, giving approximately 18 percent headroom over the calculated full-load current. Note what was not done: the same JRC1-D09 carries a 20 A AC-1 rating, and sizing this pump against that figure would have been the single most common contactor selection error.

Step 4. Check ambient and duty. At 35 °C panel ambient with 18 percent headroom, verify the figure against the product’s derating curve before committing. That margin is comfortable in a well-ventilated panel and tighter in a densely packed one. At 20 starts per hour, confirm that the rated operations per hour and the AC-3 electrical life comfortably exceed the expected duty across the panel’s service life.

Step 5. Specify coil voltage. The panel’s control transformer secondary is 220 V AC, so the coil is specified at 220 V. It is not 400 V, even though the motor runs at 400 V.

Step 6. Add protection. Pair the contactor with a correctly sized overload relay set to the motor’s full-load current, and confirm Type 1 or Type 2 coordination with the upstream breaker or fuse. A normal start under 10 seconds points to a Class 10 trip class here. The overload relay setting calculator converts nameplate current, service factor, and start duration into a preliminary setting and trip class.

Result: a JRC1-D09, three-pole, with a 220 V AC coil, plus an overload relay. The selection was derived from the load, not from a catalogue.

The same procedure applies at higher power. An 18.5 kW motor at 400 V works out to roughly 35 A full-load current and requires a contactor with an AC-3 rating above that figure.

Five-step AC contactor sizing workflow from load type through utilization category and full-load current to frame selection

Establish whether the load is resistive, a standard squirrel-cage motor, a wound-rotor motor starting under load, or a motor subject to jogging and reversing. Everything downstream depends on this answer, because it determines which of the contactor’s several current ratings actually applies.

Use the formulas above to obtain full-load current, apply the relevant load-type multiplier, then confirm that the contactor’s rated operational current Ie at your utilization category covers it with margin. Match the rated operational voltage Ue to the system line voltage.

Coil voltage is a separate specification from load voltage. A 380 V motor circuit may be switched by a 24 V DC or 220 V AC coil depending on the control architecture. Confirm what the control circuit actually supplies, whether that is a PLC output, a control transformer secondary, or a DC control supply, before ordering.

Three-pole is standard for three-phase motor loads. Four-pole is used where neutral switching or an additional independent circuit is required. Confirm the arrangement against the system earthing design, since neutral switching is required in some systems and unnecessary or prohibited in others.

Determine how many normally open and normally closed auxiliary contacts are needed for interlocking, PLC status feedback, and indicator lamps, and whether they are integral or added as a separate auxiliary block. In a standard direct-on-line starter, an auxiliary contact wired in parallel with the start button is what latches the control circuit so the contactor stays energized after the operator releases the button. Auxiliary contacts are inexpensive to specify at design stage and awkward to retrofit afterwards.

DOL starter ladder diagram with stop button, start button, overload relay contact 95-96, contactor coil KM1 and auxiliary holding contact 13-14

For frequently cycling applications such as jogging, reversing, or high-frequency automation sequences, check the rated operations per hour and the electrical life at your utilization category. Mechanical life, measured without load, is always the higher and less relevant figure.

Pair the contactor with a correctly sized overload relay for motor loads, then coordinate with an upstream breaker or fuse sized for short-circuit protection. On larger distribution boards that upstream device is often an air circuit breaker. Contactor selection is one link in a chain that runs from load current, to breaker rating, to prospective fault current, to device breaking duty. Getting the contactor right while leaving that chain unverified simply relocates the problem.

AC contactors sold internationally are generally built to IEC 60947-4-1, which defines the utilization categories and the rating structure used throughout this guide. The current fifth edition was published in 2023 and supersedes the 2018 edition. It is worth checking which edition a project specification references, because they are not identical.

North American markets commonly reference NEMA ICS 2 contactor ratings instead of, or alongside, IEC utilization categories. The two systems classify contactors differently, since NEMA uses size classes rather than AC-1 through AC-4. A specification written for one market does not translate automatically to the other. When sourcing for a North American project, confirm which framework the buyer’s specification actually requires before quoting a part.

Treat the product standard, the installation code, and any market-specific requirement as three separate questions. Confirming one does not answer the others.

Short-circuit coordination under IEC 60947-4-1 determines how much damage a fault causes to the contactor and starter. Type 1 permits damage to the equipment after a short-circuit fault, provided the damage is contained and no hazard results, and the equipment may require repair or replacement. Type 2 requires that the equipment remains suitable for further use, with only light contact welding permitted. These are different commercial and engineering outcomes. Confirm which one the project specification requires before selecting the combination.

JUTRION manufactures the JRC1 series AC contactor on its own production lines in Wenzhou, Zhejiang, built to IEC 60947-4-1. Coil voltage options include 24 V, 48 V, 110 V, 220 V, and 380 to 415 V at 50 or 60 Hz. Every unit is tested for mechanical operation, coil performance, and electrical switching before shipment.

The following are published rating points across the four utilization categories. Read the table by category rather than by model, since the same frame appears under more than one category with a different rating.

CategoryRating pointDuty this represents
AC-1JRC1-D09, 20 AResistive heaters, HVAC heating banks, general lighting
AC-2JRC1-D25, 25 AWound-rotor motors starting under load, cranes and hoists
AC-3JRC1-D09, 9 ASquirrel-cage motors, normal start and stop, pumps and fans
AC-4JRC1-D18, 7.7 AJogging, plugging, rapid reversing, elevators and conveyors

The JRC1-D09 appears twice, at 20 A under AC-1 and 9 A under AC-3, because those are two ratings of the same physical contactor under two different duties. For a standard induction-motor circuit, which covers the majority of pump, fan, and compressor applications, size against the AC-3 rating as shown in the worked example. For jogging or reversing duty, size against AC-4 instead, where the same frame carries substantially less current.

Frame ratings above these published points are available. Final model selection should be based on the model-specific ratings and project conditions, not on a current figure alone.

An OEM building control panels for HVAC or water-treatment equipment specifies contactors for straightforward motor start and stop duty. This is category AC-3. Size the AC-3 rating against the calculated full-load current, pair it with a correctly sized overload relay, and match the coil voltage to the panel’s control transformer output.

A crane OEM requires contactors that handle high-torque starting and plugging duty on wound-rotor motors, which is category AC-2. These loads are harder on the contacts than standard AC-3 duty because of repeated starting under load and reversing. Undersizing here appears as premature contact wear rather than immediate failure, which makes it easy to misdiagnose as a quality problem.

A machine builder needs contactors for an application with frequent direction reversal and inching moves, which is category AC-4, the most demanding of the four. Electrical life at the actual operations-per-hour rate matters more here than in any other scenario. Undersizing this category is the fastest way to consume a contactor’s rated life.

A facility adding power-factor-correction capacitors needs contactors sized against capacitive inrush, conventionally about 1.5 times capacitor rated current, and frequently specified with pre-charging resistors or as dedicated capacitor-switching contactors. Standard AC-1 sizing is not adequate, because capacitive inrush is a distinct switching duty rather than a mild version of resistive duty.

A panel builder switching HVAC heating banks or large lighting loads is working in category AC-1, the least demanding, since there is no significant inrush or inductive kick to manage. Discharge and HID lighting are the exception and require the 1.1 to 1.4 multiplier for ballast inrush. This is also the case where buyers sometimes over-specify by choosing an AC-3-rated part where AC-1 would serve, which is not unsafe, only unnecessary cost.

MistakeConsequencePrevention
Sizing against the AC-1 rating for a motor loadContactor undersized for its real duty, contacts weld or wear out earlyAlways size against the rating for the actual utilization category
Omitting the overload relayMotor and contactor both exposed to sustained overcurrentPair every motor circuit with a correctly sized overload relay
Ignoring switching frequency against electrical lifeA correctly current-sized contactor still fails early in high-cycle dutyCheck rated operations per hour and electrical life at your category
Mismatched coil voltageContactor fails to pull in, or the coil burns outConfirm against the actual control-circuit voltage, not the load voltage
No upstream coordination checkA short-circuit fault destroys the contactor unnecessarilyVerify Type 1 or Type 2 coordination before finalizing the design
Reversing contactors without interlockingBoth contactors can close together, creating a phase-to-phase shortSpecify both mechanical and electrical interlocking on reversing pairs
Ignoring ambient temperature and enclosure deratingShortened life despite every other specification being correctDerate using the product curve and the enclosure temperature
Forgetting the load-type multiplierCapacitor, transformer, or lighting inrush degrades contacts over timeApply the conventional multiplier for the load type
Specifying auxiliary contacts too lateCostly panel rework or awkward add-on blocksDetermine interlocking and feedback needs at design stage
SymptomPossible causesUseful checks
Chatters or hums loudlyLow or unstable coil voltage, worn shading coil, dirty or loose magnetic coreMeasure coil voltage under load, inspect the core face, verify control supply stability
Contacts welded shutUndersized for the actual category, short-circuit event without adequate coordination, excessive switching frequencyVerify category sizing, review upstream fault history, compare operations per hour against rated electrical life
No pickup although the control signal is presentOpen-circuit coil, wrong coil voltage, mechanical binding, blown control fuseMeasure coil resistance and voltage at the terminals, check the control fuse, inspect for obstruction
Contacts pitted or burnedNormal end-of-life wear, undersized for duty category, poor arc suppression at high switching frequencyCompare condition against rated electrical life, re-verify category sizing, inspect the arc chute
Auxiliary feedback disagrees with the main contact stateWorn or misaligned auxiliary block, mechanical linkage wearTest auxiliary continuity independently, inspect the linkage to the main contact assembly
Terminals overheatingLoose termination, undersized conductor, incorrect torque at installationCheck terminal torque against specification, verify conductor sizing, thermal-image under load
Coil burns out repeatedlySustained overvoltage on the control circuit, excessive ambient temperature, mechanical binding preventing full pull-inSukatin ang control voltage sa lahat ng kondisyon ng operasyon, tingnan kung may binding, beripikahin ang ambient temperature

Ang paulit-ulit na maagang pagkasira sa parehong aplikasyon ay halos palaging nagpapahiwatig ng hindi tugmang sizing, coordination, o duty-cycle sa halip na may depektong batch. Alamin ang sanhi bago muling mag-order ng parehong part number.

Ang pag-de-energize ng inductive coil ay lumilikha ng voltage transient. Kapag direktang ini-switch ng PLC transistor output, maliit na interposing relay, o electronic controller ang coil na iyon, bumabalik dito ang transient. Ito ay karaniwang sanhi ng pagkasira ng PLC output at ng pitted contacts sa interposing relays, at madali itong maiwasan sa disenyo. Gumamit ng RC snubber sa mga AC coil, at flyback diode o varistor sa mga DC coil. Tandaan ang trade-off: kapansin-pansing pinahahaba ng plain flyback diode ang drop-out time, na mahalaga kapag bahagi ang contactor ng safety-related stop function na may itinakdang response time.

Kumpirmahin ang operating voltage tolerance ng coil sa halip na ipagpalagay na tama ang nominal figure. Ang mahabang control cable run o undersized na control transformer ay maaaring magpababa sa aktwal na coil voltage sa ilalim ng band kung saan magpu-pull in at magho-hold ang coil, at ang sintomas ay lumalabas bilang chattering sa halip na halatang wiring fault.

  1. Aplikasyon o equipment na kinokontrol
  2. Uri ng load: motor, heater, lighting, capacitor, o transformer
  3. Utilization category, kung natukoy na
  4. Rated power ng motor sa kW, o load sa kW
  5. System voltage at frequency
  6. Kinakalkulang full-load current
  7. Duty: starts kada oras, at kung ang aplikasyon ay nagre-reverse o nag-jo-jog
  8. Kinakailangang coil voltage, at kung AC o DC
  9. Pole count, three-pole o four-pole
  10. Kinakailangang auxiliary contacts, normally open at normally closed
  11. Upstream protective device, breaker o fuse
  12. Temperatura ng paligid ng panel
  13. Mounting arrangement, DIN rail o screw
  14. Dami ng order at destination market
  15. Anumang OEM o ODM requirements

Ano ang pagkakaiba ng AC contactor at motor starter?

Ang motor starter ay contactor na pinagsama sa overload relay sa isang assembly, na partikular na ginawa para sa mga motor circuit. Ang standalone contactor ay nagbibigay lamang ng switching function, at ang overload protection ay idinaragdag nang hiwalay.

Maaari bang gamitin ang isang contactor para sa parehong AC-1 at AC-3 loads?

Ang parehong pisikal na contactor ay karaniwang may rating para sa ilang kategorya, ngunit sa magkaibang current rating para sa bawat isa. Sukatin laban sa rating na tumutugma sa utilization category ng aktwal na load, hindi sa pinakamataas na numero sa label.

Paano ko kinakalkula ang current para sa contactor sizing?

Para sa three-phase motor, gamitin ang I = P × 1,000 / (√3 × VLL × cos φ × η), kung saan ang P ay rated power sa kW, VLL ay line-to-line voltage, ang cos φ ay power factor, at ang η ay efficiency. Pagkatapos ay ilapat ang anumang load-type multiplier at kumpirmahin ang resulta laban sa rating ng contactor sa iyong utilization category.

Ligtas ba palagi ang mas malaking contactor?

Hindi. Ang oversizing ay nag-aaksaya ng gastos at panel space, at sa ilang loads ang contacts ng oversized contactor ay nagdadala ng masyadong maliit na current para manatiling malinis. Sukatin nang may makatuwirang margin sa itaas ng kinakalkulang full-load current sa tamang kategorya sa halip na tumalon ng dalawang frame size.

Anong coil voltage ang dapat kong piliin?

Itugma ito sa aktuwal na ibinibigay ng control circuit, maging PLC output man iyon, secondary ng control transformer, o DC panel supply. Hindi ito ang boltahe sa load-side na ini-switch ng contactor.

Bakit humuhuni o nag-chatter ang contactor ko?

Ang karaniwang mga dahilan ay mababa, hindi matatag, o maling coil voltage, o sira o maruming magnetic core face sa isang AC-coil unit. Sukatin ang coil voltage sa ilalim ng aktuwal na kondisyon ng load at siyasatin ang core face bago sabihing sira ang unit.

Kailangan ko pa ba ng overload relay kung gumagamit ako ng contactor?

Oo, para sa mga motor circuit. Ang contactor ay nag-switch kapag inuutusan ngunit hindi ito nag-trip sa patuloy na overcurrent, na siyang tungkulin ng overload relay. Ang dalawang device ay nagtutulungan at hindi pamalit sa isa’t isa.

Ilang switching cycle ang kaya ng isang contactor?

Depende ito sa frame size at, mas mahalaga, sa utilization category at antas ng current kung saan ito gumagana. Ang mechanical life na sinusukat nang walang load ay karaniwang mas mataas kaysa electrical life sa ilalim ng load, at lalong bumababa ang electrical life sa mas mataas na switching frequency. Tingnan ang rated electrical life sa aktuwal na duty cycle.

Maaari bang i-wire nang parallel ang dalawang contactor upang maghati ng current?

Karaniwang hindi ito inirerekomenda para sa main load switching. Ang mga contact ay hindi nagsasara nang eksaktong sabay, kaya isang device ang sasalo ng buong making current. Gumamit na lamang ng isang contactor na may tamang sukat.

Ano ang pagkakaiba ng Type 1 at Type 2 coordination?

Sa ilalim ng IEC 60947-4-1, pinapayagan ng Type 1 ang pagkasira ng contactor at starter pagkatapos ng short-circuit fault basta’t nakakulong ang pinsala at walang panganib na resulta. Ang Type 2 ay nangangailangan na ang kagamitan ay manatiling angkop para sa karagdagang paggamit, na tanging magaang na contact welding lamang ang pinapayagan. Kumpirmahin kung alin ang hinihingi ng espesipikasyon ng proyekto.

Kailangan ko bang i-derate ang contactor para sa mataas na ambient temperature?

Oo. Ipinapalagay ng rated current ang isang datasheet reference ambient. Sa itaas ng temperaturang iyon, bumababa ang kapasidad. Gamitin ang derating curve ng manufacturer at ibatay ito sa temperatura sa loob ng enclosure sa halip na temperatura ng silid.

Paano ko susuriin ang isang AC contactor gamit ang multimeter?

Habang nakahiwalay at naka-lock off ang circuit, sukatin ang coil resistance sa pagitan ng A1 at A2. Ang open circuit o halos zero na reading ay nagpapahiwatig ng sirang coil. Pagkatapos ay tingnan ang continuity sa bawat main pole, na dapat magbasa ng open kapag de-energized at closed kapag manu-manong pinindot ang contactor. Ikumpara ang tatlong pole, dahil ang isang pole na kapansin-pansing naiiba ang reading ay nagpapahiwatig ng pinsala sa contact sa pole na iyon.

Ang maaasahang pagpili ng contactor ay nagmumula sa hinihingi ng aplikasyon at umuusad patungo sa isang part number. Ang pagsisimula sa available na frame size at pag-asang kasya ang duty ay kung paano napupunta ang mga undersized na contactor sa mga motor panel.

Ang praktikal na pagkakasunud-sunod ay tuwiran: tukuyin ang load at ang kategorya ng paggamit nito, kalkulahin ang full-load current, ilapat ang load-type multiplier at ambient derating, pagkatapos ay beripikahin ang rated operational current ng contactor sa kategoryang iyon. Pagkatapos lamang maitakda ang ampere figure ay kukumpletuhin ng pole, coil, auxiliary contact, electrical life, at short-circuit coordination checks ang espesipikasyon.

Kapag nakumpirma na ang mga input na iyon, ihambing ang mga ito laban sa mga available na configuration sa Saklaw ng AC contactor ng JUTRION. Ang panghuling pagpili ng modelo ay dapat sumunod sa mga model-specific na rating at sa mga kondisyon ng proyekto, hindi sa current figure lamang.

Evan
Evan

Inhinyerong Elektrikal | Distribusyon ng Kuryenteng Mababa ang Boltahe

Kumusta, ako si Evan.

Ako ay isang electrical engineer na may 10 taong karanasan sa low-voltage electrical equipment, circuit protection, at power distribution systems. Dalubhasa ako sa pagpili ng produkto, application engineering, at teknikal na suporta para sa mga proyektong pang-industriya, pangkomersyo, at renewable-energy.

Para sa mga teknikal na katanungan, mangyaring makipag-ugnayan sa akin sa evan@jutrion.com.