Motor Starting Guide

Generator Size Chart for Motors

Look up the right generator kW and kVA for any motor using NEMA code letters, locked-rotor kVA per HP, and starting method. Sized to start — not just run.

NEMA Code Letters
HP to kW & kVA
DOL · Star-Delta · Soft Start · VFD
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Diesel Generators Built for Motor Starting

Every set is 100% load-tested for real-world motor starts.

25+ Years manufacturing
8–4,000 kVA generator range
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Why Motor Starting Drives Sizing

Size to the Starting kVA, Not the Running kW

Most generator sizing mistakes on motor loads come from a single misunderstanding: sizing for running power instead of starting power. A motor draws three to seven times its running current at start-up — a surge called locked-rotor inrush.

Running kW Real Power

The power the motor consumes at full load. Calculated as HP × 0.746 ÷ efficiency.

Running kVA Apparent Power

Running kW divided by the motor's power factor. The load the generator sees during steady operation.

Starting kVA Locked-Rotor Surge

The decisive figure. Found from the motor's NEMA code letter: HP × locked-rotor kVA/HP.

Worked Example: 150 HP Motor

A 150 HP motor with 91% efficiency, 0.91 power factor, and NEMA Code F draws about 123 kW running and 135 kVA running — but a starting kVA of roughly 795 kVA. A generator sized for the running load would be undersized by nearly a factor of six at the moment of start.

The Three Numbers You Need

Every Motor-to-Generator Calculation Reduces to Three Values

1
Running kW

Real power the motor consumes at full load.

2
Running kVA

Running kW ÷ power factor.

3
Starting kVA

HP × locked-rotor kVA/HP from the NEMA code letter. This is the number that sizes the generator.

NEMA Locked-Rotor Code

How to Read the NEMA Code Letter for Generator Sizing

The key to sizing a generator for motor starting is printed on every motor nameplate: the NEMA locked-rotor code letter. This single letter tells you how much apparent power the motor will demand at locked rotor, expressed as kVA per horsepower. Higher letters mean higher locked-rotor current — and a larger generator.

Code Letter Locked-Rotor kVA/HP Approx. Mid-Range
A0 – 3.141.6
B3.15 – 3.553.3
C3.55 – 3.993.8
D4.0 – 4.494.3
E4.5 – 4.994.7
F5.0 – 5.595.3
G5.6 – 6.295.9
H6.3 – 7.096.7
J7.1 – 7.997.5
K8.0 – 8.998.5
L9.0 – 9.999.5
M10.0 – 11.1910.6
N11.2 – 12.4911.8
P12.5 – 13.9913.2
R14.0 – 15.9915.0
S16.0 – 17.9917.0
T18.0 – 19.9919.0
U20.0 – 22.3921.0
V22.4 and up22.4
Source: NEMA MG 1-10.36 / NEC Table 430.7(B). Always use the conservative (upper) value within the code-letter range when planning.

Typical Code Letter by Motor HP

Less than 1 HPL or M9.0 – 11.19
1.5 – 2 HPL or M9.0 – 11.19
3 HPK8.0 – 8.99
5 HPJ7.1 – 7.99
7.5 – 10 HPH6.3 – 7.09
15 HP and aboveG5.6 – 6.29
40 HP and aboveF5.0 – 5.59

The Formula

Starting kVA = Motor HP × locked-rotor kVA per horsepower (from the code letter).

Starting kVA = HP × kVA/HP
Then size the generator to meet or exceed this value.
Motor to Generator

Motor HP to Generator kW & kVA Chart

The chart below converts a motor's running horsepower to the minimum generator capacity required for reliable starting, using standard efficiency (90%) and 0.85 power factor, with across-the-line (DOL) starting. For reduced-voltage starting methods, apply the correction factors in the next section.

Motor kW Motor HP Min. Generator kW Min. Generator kVA
2.2367.5
5.57.512.515.6
111522.528
15203038
22304557
30406075
37507594
456090112
75100150190
110150210260
Cross-checked against industry pump and generator manufacturers' sizing tables. Final selection must be confirmed against your motor's nameplate data. For single-phase motors, size at 2.5 to 3× the motor's running kW.
Starting Method Comparison

How Starting Method Changes the Generator Size

The single biggest lever in motor-driven generator sizing is how you start the motor. Across-the-line starting slams the full locked-rotor current into the generator; reduced-voltage starters limit that inrush, allowing a smaller — and less expensive — generator set.

01

Direct-On-Line (DOL)

Full voltage applied instantly. Highest inrush current — typically 6 to 8 times full-load amperage.

Starting current: 6–8× FLA Starting kVA: 600–800% of running
Largest generator required
02

Star-Delta (Wye-Delta)

Reduces starting current by connecting windings in star configuration during start, then switching to delta.

Starting current: 2–3× FLA Starting kVA: 200–300% of running
~33% of DOL size
03

Soft Starter

Gradually increases voltage to the motor, limiting inrush current and mechanical stress.

Starting current: 2–3× FLA Starting kVA: 200–300% of running
Smaller generator
04

Variable Frequency Drive (VFD)

Controls both voltage and frequency, allowing the motor to accelerate smoothly with minimal inrush.

Starting current: 1–1.5× FLA Starting kVA: 100–150% of running
Smallest generator required

Why This Matters in Practice

Consider three 50 kW motors that must start together. Started DOL, they produce a combined starting surge of roughly 1,050 kVA. The same three motors fitted with soft starters draw about 375 kVA; with VFDs, the surge drops to roughly 180 kVA. The difference can move you from a 1,000 kVA generator down to a 400 kVA unit — a substantial saving in purchase price, fuel, and footprint.

Voltage Dip

Voltage Dip When Starting a Motor on a Generator

Starting kVA is only half the story. What limits your generator's ability to start a motor is voltage dip — how far the terminal voltage falls while the alternator supplies the locked-rotor surge.

How Far Does the Voltage Dip?

A 30% voltage dip reduces the motor's starting kVA by about half (0.7 × 0.7 = 0.49), because both voltage and current fall together. But it also cuts starting torque to roughly 49% of rated locked-rotor torque — so a heavily loaded motor may fail to accelerate.

Target: 20–30% max instantaneous dip

What Else Is on the Line?

Most control relays and contactors tolerate a 40% dip, but sensitive electronics can chatter or drop out above a 20% dip. For mission-critical starts — medical equipment, safety systems, process-critical pumps — keep the dip to 15% or less and request the manufacturer's starting-kVA curve.

Critical loads: ≤15% dip
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Shandong Huali Electromechanical Co., Ltd. manufactures diesel generator sets from 8 kVA to 4,000 kVA — single-phase and three-phase, at 50 Hz or 60 Hz, built to start and run the most demanding motor loads. Every unit is 100% pre-delivery tested in our national-standard testing center, certified to ISO9001, CE, and CCC, and supported by more than 80 engineers and 25+ years of manufacturing experience.

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