60 HP Motor Amps — Full-Load Current, Wire & Breaker Size

Full-load current of a 60 horsepower motor at every standard voltage, with minimum conductor size and maximum breaker and fuse ratings worked out for each.

A 60 HP motor draws 154 A at 230 V and 77 A at 460 V three-phase.

60 HP three-phase motor

60 HP three-phase induction motor — current and circuit sizing
VoltageFull-load ampsConductor ampacity (125%)Min. copper wire, 75°CMax. inverse-time breaker (250%)Max. time-delay fuse (175%)
200 V177 A221.2 A4/0 AWG450 A350 A
208 V169 A211.2 A4/0 AWG450 A300 A
230 V154 A192.5 A3/0 AWG400 A300 A
460 V77 A96.2 A3 AWG200 A150 A
575 V62 A77.5 A4 AWG175 A110 A
2300 V16 A20.0 A14 AWG40 A30 A

60 HP DC motor

60 HP direct-current motor
Armature voltageFull-load ampsConductor ampacity (125%)
240 V206 A257.5 A
500 V99 A123.8 A
550 V90 A112.5 A

60 HP two-phase motor

60 HP two-phase, 4-wire motor
VoltageFull-load amps
230 V133 A
460 V67 A
575 V53 A
2300 V14 A

60 HP is 44.76 kW of shaft output. Wire sizes above are the smallest copper conductor whose 75°C ampacity covers 125% of full-load current; 14 AWG is the practical minimum for power circuits. They do not include voltage drop — on long runs check the voltage drop calculator — or derating for hot locations or crowded conduits. Breaker and fuse values are maximums with the next-standard-size-up allowance applied; smaller devices are fine if the motor starts without tripping.

Motor wire & breaker size calculator

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Other horsepower ratings

Frequently asked questions

How many amps does a 60 HP motor draw?

A 60 HP motor draws 154 A at 230 V and 77 A at 460 V three-phase. These are the code table values used for circuit sizing; the actual nameplate current is usually a little lower.

What size wire and breaker for a 60 HP three-phase motor at 460 V?

Full-load current is 77 A, so conductors need at least 96.2 A of ampacity: 3 AWG copper at 75°C. The inverse-time breaker may be up to 200 A and a dual-element time-delay fuse up to 150 A.

NECTables.com is an independent reference and is not affiliated with, endorsed by, or a substitute for the National Fire Protection Association (NFPA). NEC® and National Electrical Code® are registered trademarks of the NFPA. Values shown are commonly published engineering data and independent calculations based on the methods of NFPA 70; they are not a reproduction of the Code. Always confirm against the edition adopted in your jurisdiction, including local amendments, and consult a licensed electrician or engineer before doing electrical work.