3 Phase Motor Current Chart – Full Load Amps by HP
Motor Reference Data

3 Phase Motor Current Chart: Full Load Amps by HP

A three-phase motor draws a predictable current at full load, and that number is the starting point for every downstream decision. It sets the conductor size, the breaker and overload settings, the contactor rating, and the kVA of the generator that will carry the motor through start‑up. This 3 phase motor current chart gives you that number directly, so you can move from "what does this motor draw" to "what do I need to feed it" without a calculation.

NEC full‑load tables
Motor amps by HP
Generator sizing reference
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Shandong Huali

Industrial Power & Generator Solutions

We manufacture diesel generator sets from 8 to 4,000 kVA and publish free electrical reference tools for engineers, electricians, and technical buyers. Motors are the load our generators start and run every day — this chart is built to the same standard we use when we size a generator for a motor load.

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How to Read a 3 Phase Motor Current Chart
Motor Reference Guide

How to Read a 3 Phase Motor Current Chart

A motor current chart is a lookup table, not a calculation. Find the motor's horsepower in the left column, then read across to the column that matches your supply voltage. The number you land on is the full‑load current in amps.

HP → Amps Look Up, Don't Calculate

Find the motor's horsepower in the left column, then read across to the column that matches your supply voltage. The number you land on is the full‑load current in amps.

230 V 2.5 Amps per HP

At 230 V three‑phase, motors draw roughly 2.5 amps per horsepower. A 10 hp, 230 V motor draws about 28 amps.

460 V 1.25 Amps per HP

At 460 V three‑phase, motors draw roughly 1.25 amps per horsepower — half the 230 V figure. A 10 hp, 460 V motor draws about 14 amps.

Use the Table, Not the Rule of Thumb

The chart works because the code assigns standard full‑load current values to each horsepower and voltage rating. A 10 hp, 460 V motor draws 14 amps at full load; a 10 hp, 230 V motor draws 28 amps. Double the voltage and the current halves, which is why a motor rated for a higher voltage uses a thinner conductor for the same horsepower.

Rule of thumb for 575 V: roughly 1 amp per horsepower. These are approximations. The table below is the precise reference, and you should use the table for any sizing decision rather than the rule of thumb.

Key Takeaways

How to Read the Chart

01
Find HP, Read Voltage Column

Locate the motor's horsepower in the left column, then read across to the voltage column that matches your supply.

02
Higher Voltage = Lower Current

A 10 hp motor draws 28 A at 230 V but only 14 A at 460 V. Double the voltage halves the current.

03
Approximations vs. Precision

2.5 A/hp at 230 V, 1.25 A/hp at 460 V, and 1 A/hp at 575 V are useful checks — but always use the table for final sizing.

04
Downstream Decisions

Full‑load amps determine conductor size, breaker rating, contactor selection, and the generator kVA needed to start the motor.

Full Load Current Chart – NEC 430.250
Motor Reference Data

Full Load Current Chart by Horsepower (NEC 430.250)

The table below lists full‑load current in amps for three‑phase squirrel‑cage induction motors, from 1/2 through 200 horsepower, across the four common supply voltages. Values are from NEC Table 430.250.

Motors 1/2 through 200 HP
HP 208 V 230 V 460 V 575 V
1/22.2 A2.0 A1.0 A0.8 A
3/43.1 A2.8 A1.4 A1.1 A
14.0 A3.6 A1.8 A1.4 A
1-1/25.7 A5.2 A2.6 A2.1 A
27.5 A6.8 A3.4 A2.7 A
310.6 A9.6 A4.8 A3.9 A
516.7 A15.2 A7.6 A6.1 A
7-1/224.2 A22 A11 A9 A
1030.8 A28 A14 A11 A
1546.2 A42 A21 A17 A
2059.4 A54 A27 A22 A
2574.8 A68 A34 A27 A
3088 A80 A40 A32 A
40114 A104 A52 A41 A
50143 A130 A65 A52 A
60169 A154 A77 A62 A
75211 A192 A96 A77 A
100273 A248 A124 A99 A
125343 A312 A156 A125 A
150396 A360 A180 A144 A
200528 A480 A240 A192 A
Large Motors 250 through 500 HP — 208 V omitted
HP 230 V 460 V 575 V
250604 A302 A242 A
300722 A361 A289 A
350828 A414 A336 A
400954 A477 A382 A
4501030 A515 A412 A
5001180 A590 A472 A
The current halves each time the voltage doubles, so a 100 hp motor draws 248 amps at 230 V but only 124 amps at 460 V. That difference is why industrial facilities prefer 460 V distribution: the same motor uses smaller conductors, smaller contactors, and a smaller starter.

At 500 hp and 460 V, full‑load current reaches 590 amps. A motor that size is a serious load, and the conductor, switchgear, and generator behind it all scale with that figure.
Key Takeaways

How to Use This Chart

01
Find HP, Read Voltage

Locate the motor's horsepower in the left column, then read across to your supply voltage. That is the full‑load current.

02
Higher Voltage = Lower Current

A 100 hp motor draws 248 A at 230 V but only 124 A at 460 V. Double the voltage halves the current.

03
Conductors, Breakers, Contactors

Full‑load amps determine every downstream component — from conductor size to starter rating to generator kVA.

04
208 V Not Listed Above 200 HP

Large motors are almost always run at 230, 460, or 575 V. The code omits 208 V for motors above 200 HP.

05
500 HP = 590 A at 460 V

A 500 hp motor draws 590 amps at full load. This is a serious load — conductor, switchgear, and generator sizing all follow from this number.

Single Phase Motor Current Chart – NEC 430.248
Motor Reference Data

Single Phase Motor Current Chart (NEC 430.248)

Not every motor load is three‑phase. Single‑phase motors appear on pumps, fans, compressors, and small machine tools, and they have their own full‑load current table. The single‑phase motor current chart below covers 1/6 through 10 horsepower.

HP 115 V 208 V 230 V
1/64.4 A2.4 A2.2 A
1/45.8 A3.2 A2.9 A
1/37.2 A4.0 A3.6 A
1/29.8 A5.4 A4.9 A
3/413.8 A7.6 A6.9 A
116 A8.8 A8.0 A
1-1/220 A11 A10 A
224 A13.2 A12 A
334 A18.7 A17 A
556 A30.8 A28 A
7-1/280 A44 A40 A
10100 A55 A50 A
Single‑phase motors draw significantly more current than three‑phase motors of the same horsepower, which is why three‑phase is the standard wherever the supply is available. If your load is single‑phase, use this table, not the three‑phase chart.
Table FLC vs Nameplate FLA – Motor Sizing Guide
Motor Circuit Design

Table FLC vs Nameplate FLA: Which Number Sizes What

This is the most common point of confusion in motor circuit design, and it is worth getting right. A motor carries two current ratings, and they serve different purposes.

STEP 01

Table Full‑Load Current (FLC)

Comes from the chart. Use it to size the conductors, disconnect, short‑circuit and ground‑fault protection, and the breaker or fuse. This is the code rule: NEC 430.6(A)(1) requires you to use the table value, not the nameplate, for these components.

STEP 02

Nameplate Full‑Load Amps (FLA)

Stamped on the motor. Use it only to select the overload protection, which protects the motor windings themselves. The nameplate value is the actual measured current for that specific motor from that specific manufacturer.

STEP 03

Why the Code Separates Them

Motors of the same horsepower and voltage vary slightly from one manufacturer to another. The table value is conservative enough to cover all of them. Using the nameplate value for the conductor can undersize the circuit if a replacement motor draws slightly more.

STEP 04

Sizing the Conductor – 125% of FLC

Once you have the FLC from the chart, size the conductor at 125% of FLC under NEC 430.22 for continuous duty. A 10 hp, 460 V motor draws 14 amps, so the conductor is sized for 17.5 amps minimum.

STEP 05

Sizing the Breaker or Fuse – NEC 430.52

The breaker or fuse is sized from FLC using the multipliers in NEC 430.52: up to 250% for inverse‑time breakers, 175% for time‑delay fuses, or 300% for non‑time‑delay fuses.

The chart is where it all starts. Conductor, breaker, contactor, and overload each branch off that one full‑load current number.

Generator Sizing

Motor Amps to Generator Size

Full‑load current leads directly to the generator question, because a motor's starting current, not its running current, is what a generator must survive. A motor draws four to eight times its full‑load current for the first few seconds of start‑up.

01

Starting Current vs Running Current

A 50 hp, 460 V motor runs at 65 amps but can demand 300 to 500 amps momentarily as it comes up to speed. The generator must be sized to start that motor without excessive voltage dip.

02

From Amps to Generator kVA

Start from the motor's apparent power in kVA: kVA = √3 × V × A ÷ 1000 A 50 hp, 460 V motor at 65 amps draws about 52 kVA at full load. Its starting demand is far higher, which is why generator sizing uses motor starting kVA, not running kVA.

Worked Example

50 hp, 460 V Motor – From FLC to Generator Size

A 50 hp, 460 V motor has a full‑load current of 65 A from the NEC table. Running kVA = √3 × 460 × 65 ÷ 1000 = ~52 kVA. At start‑up, the motor draws ~5× FLC = 325 A, requiring ~260 kVA for the first few seconds. A generator sized for the running load would be undersized by a factor of 5. The generator must be selected to handle the starting surge — which is why our generator sizing calculator always includes motor start‑up demand.

If the load is a motor, the chart is the first step and the generator is the last. Get the full‑load current right, and everything downstream falls into place.

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About Shandong Huali

Shandong Huali Electromechanical Co., Ltd. manufactures diesel generator sets, dust-suppression equipment, and industrial automation systems, with over 25 years of experience and exports to more than 20 countries. We publish free electrical reference tools to help engineers and buyers specify power systems correctly.

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