How Many Amps Does a 15 HP three-phase Motor Draw at 575V?
15 HP three-phase motor at 575V draws 15.55 amps per line. Three-phase power is the standard for commercial and industrial motors because it delivers more mechanical output per amp of wire. The amp draw depends on voltage, motor efficiency, and power factor.
Use this citation when referencing this page.
Use the running amps for metering and energy calculations. For branch-circuit sizing, AC motors use the NEC Table 430.248 / 430.250 full-load current under NEC 430.6(A)(1); DC motors use the motor nameplate full-load current under NEC 430.6(A)(3), with Table 430.247 as the reference. Three-phase current is shown per line on a balanced circuit.
Formula (three-phase)
I(A) = (HP × 746) ÷ (√3 × VL-L × Eff × PF)
- Convert HP to watts: 15 × 746 = 11,190W
- Denominator: √3 × 575 × 0.85 × 0.85 = 1.73 × 575 × 0.85 × 0.85 = 719.56
- Result: 11,190 ÷ 719.56 = 15.55 amps per line
Three-phase current is per line on a balanced circuit. Voltage is line-to-line; the √3 factor comes from the three-phase vector geometry, not a round-trip doubling.
NEC Reference Values
This section lists the Code reference numbers a motor branch circuit is sized from. Final conductor, breaker, disconnect, and overload selection is an install decision a licensed electrician makes against the motor nameplate, the actual install conditions, and the applicable NEC articles, not a decision a conversion page can make for you.
NEC Sizing Base: NEC Table 430.250 FLC
Per NEC 430.6(A)(1), motor branch-circuit conductors, switches, and overcurrent protection are sized from the values in Table 430.248 (single-phase) or Table 430.250 (three-phase), not from the motor nameplate and not from a calculated full-load amps. For a 15 HP three-phase motor at 575V, the table value is 17 A (the 460V column covers 440-480V under 430.6(A)(1)).
The 15.55 A shown in the hero is the calculated running current at 85% efficiency and PF 0.85, per line on a balanced three-phase circuit. This is a conversion from the nameplate horsepower under those assumptions, not a measured value; a real meter reading depends on the motor's actual efficiency, loading, temperature, and design. Use this figure for energy and metering estimates, and use 17 A as the reference FLC when an electrician walks through NEC 430 against the nameplate.
NEC 430.22 Conductor Rule (reference formula)
NEC 430.22 requires motor branch-circuit conductor ampacity of at least 125% of the Code sizing FLC. As a reference calculation against the NEC Table 430.250 value: 17 × 1.25 = 21.25 A. The selected conductor is taken from NEC Table 310.16 at the applicable termination temperature column, with ambient, bundling, and cable-type adjustments applied by the installer. Motor branch-circuit conductors are exempt from the 240.4(D) small-conductor rule via 240.4(G).
NEC 430.52 Overcurrent Protection (code caps)
NEC Table 430.52(C)(1) gives the maximum rating for motor short-circuit and ground-fault protection as a percentage of the Code sizing FLC. The percentage depends on the device type:
| Device Type | Maximum % of Table FLC (430.52(C)(1)) |
|---|---|
| Non-time-delay fuse | 300% |
| Dual-element (time-delay) fuse | 175% |
| Inverse-time circuit breaker | 250% |
| Instantaneous-trip circuit breaker | 800% |
These percentages are maximum caps, not install picks. A real circuit applies the percentage against the Code sizing FLC for the specific device type, rounds up to a standard size per 430.52(C)(1)(a), and is verified against the motor nameplate and the install conditions by the installer. The elevated percentages exist so short-circuit protection does not nuisance-trip on locked-rotor startup inrush.
Locked Rotor (Startup) Current
During the first 2-5 seconds of startup, a squirrel-cage induction motor typically draws 5 to 7 times the NEC Table 430.250 FLC of 17 A (roughly 85 to 119 A). This is why the 430.52(C)(1) percentages above are so much higher than running current: the short-circuit/ground-fault protective device has to ride through locked-rotor inrush without tripping. Actual LRA is set by the motor's NEMA code letter on the nameplate and should be checked there for a real install.
| Current | Amps | Duration |
|---|---|---|
| Calculated running current (meter) | 15.55 A per line | Continuous at full load |
| NEC Table 430.250 FLC (Code reference) | 17 A | Sizing base, not metered |
| Locked rotor (typical, 5-7×) | 85-119 A | 2-5 seconds |
Operating Cost
Motor mechanical output is 11,190 W (15 HP × 746). Electrical input at the terminals is higher because no motor is 100% efficient: 11,190 ÷ 0.85 = 13,164.71 W. At $0.17/kWh, running cost is $2.24/hour or $537.12/month at 8 hours/day. Full breakdown at 13,164.71 W.
Amps by Motor Efficiency (three-phase)
Motor efficiency directly affects amp draw. A more efficient motor draws less current for the same HP output. Values below are the calculated three-phase running current at 575V per line and PF 0.85:
| Efficiency | Amps at 575V (per line) | Watts Consumed | Waste Heat |
|---|---|---|---|
| 75% | 17.62 A | 14,920 W | 3,730 W |
| 80% | 16.52 A | 13,987.5 W | 2,797.5 W |
| 85% | 15.55 A | 13,164.71 W | 1,974.71 W |
| 90% | 14.69 A | 12,433.33 W | 1,243.33 W |
| 95% | 13.91 A | 11,778.95 W | 588.95 W |
Other HP Values at 575V (three-phase)
Running current is the calculated three-phase draw per line at 85% efficiency and 0.85 PF (a conversion from HP under those assumptions, not a measured value). NEC Table FLC is the value from NEC Table 430.250 used for branch-circuit conductor and OCP sizing under NEC 430.6(A)(1). LRA is estimated at 5-7× the NEC table FLC; rows outside the table show n/a because there is no code-authoritative LRA basis for that HP/voltage/phase combination. Row links open each result page in three-phase mode.
| HP | Running Amps (calculated) | NEC Table 430.250 FLC | LRA Estimate (5-7× FLC) |
|---|---|---|---|
| 1/8 HP | 0.1296 A | off-table | n/a |
| 1/6 HP | 0.1728 A | off-table | n/a |
| 1/4 HP | 0.2592 A | off-table | n/a |
| 1/3 HP | 0.3455 A | off-table | n/a |
| 1/2 HP | 0.5184 A | 0.9 A | 4.5-6.3 A |
| 3/4 HP | 0.7776 A | 1.3 A | 6.5-9.1 A |
| 1 HP | 1.04 A | 1.7 A | 8.5-11.9 A |
| 1.5 HP | 1.56 A | 2.4 A | 12-16.8 A |
| 2 HP | 2.07 A | 2.7 A | 13.5-18.9 A |
| 3 HP | 3.11 A | 3.9 A | 19.5-27.3 A |
| 5 HP | 5.18 A | 6.1 A | 30.5-42.7 A |
| 7.5 HP | 7.78 A | 9 A | 45-63 A |
| 10 HP | 10.37 A | 11 A | 55-77 A |
| 15 HP | 15.55 A | 17 A | 85-119 A |
| 20 HP | 20.73 A | 22 A | 110-154 A |
| 25 HP | 25.92 A | 27 A | 135-189 A |
| 30 HP | 31.1 A | 32 A | 160-224 A |
| 40 HP | 41.47 A | 41 A | 205-287 A |
| 50 HP | 51.84 A | 52 A | 260-364 A |
| 75 HP | 77.76 A | 77 A | 385-539 A |