HTX Motor

Buying Guide

How to Size a Diesel Generator: A Practical kVA Guide for Buyers

Avoid the two most expensive mistakes in genset procurement — undersizing and oversizing. A step-by-step method to choose the right kVA, with a worked example.

To size a diesel generator: total the loads that run simultaneously, add the starting surge of the largest motor, divide by the power factor (≈0.8) to get kVA, derate for altitude and heat, then add 10–20% reserve. That one sentence is the whole method — the rest of this guide walks through each step with the numbers and the traps.

Choosing the right diesel generator is the difference between reliable power and a unit that overheats, wet-stacks, or simply can’t start your motors. The two most expensive mistakes in procurement are undersizing (the genset trips under load) and oversizing (you pay more upfront and then run the engine at light loads it was never designed for).

Step 1 — List every load and its running power

Write down each appliance or machine the generator must run, with its running (continuous) power in watts or kW. Check the nameplate, not your memory. For a mixed site, total the loads that will run at the same time, not the sum of everything you own — a workshop rarely runs the welder, the compressor, and every light simultaneously.

Step 2 — Account for the starting surge

Electric motors (pumps, compressors, AC units) draw 3–7× their running current at startup. This inrush, not the running load, usually sets the generator size. As a rule of thumb, add the largest motor’s starting requirement on top of the running total of everything else already spinning. A 5 kW pump may need 15–20 kW available the instant it starts.

If several motors start at once, stagger them — starting sequence is free capacity. Sites that can’t stagger (automatic pump arrays, for instance) must size for the worst simultaneous start.

Step 3 — Convert kW to kVA

Generators are rated in kVA, but loads are often given in kW. Convert using the power factor (PF):

kVA = kW ÷ PF (typical PF for mixed commercial loads ≈ 0.8)

So a 16 kW load at 0.8 PF needs 20 kVA.

Step 4 — Add headroom for altitude and temperature

Diesel engines lose output in thin air and high heat — critical for highland and tropical sites. Typical derating is roughly:

Sites at 3,000–4,000 m can lose 15–20% of rated output. Size for the derated figure, then add 10–20% reserve for future loads. The full mechanics — and what turbocharging does and doesn’t fix — are in our guide to why diesel engines lose power at altitude.

Step 5 — Choose phase, frequency, and rating type

Worked example

A small farm workshop: lighting and tools 6 kW running, a 4 kW water pump (starts under load), a 3 kW cold-room compressor.

  1. Running total when everything is on: 6 + 4 + 3 = 13 kW
  2. Largest motor start: the pump may demand ~3× → add ~8 kW of surge headroom → 21 kW peak
  3. Convert: 21 ÷ 0.8 = 26 kVA
  4. Site at 2,500 m: derate ~15% → need the derated output to cover 26 kVA → look at ~31 kVA rated
  5. Add reserve → a 33–35 kVA prime-rated, three-phase set is the sensible bracket.

Skipping step 4 is how a “correctly sized” generator ends up tripping every afternoon in the highlands.

Open-frame vs silent vs welding

TypeBest for
Open-frameConstruction sites, lowest cost, easy access
Silent (enclosed)Occupied areas, < 75 dB, weather-resistant
Welding gensetField repair and fabrication — power + welding in one

The mistakes we see most often

Quick reference

  1. Total running load → 2. Add largest motor’s starting surge → 3. ÷ 0.8 to get kVA → 4. Derate for altitude/heat → 5. Add 10–20% reserve.

Not sure which model fits your duty cycle? Browse the diesel generator range, then send us your application, power requirement, altitude, and the loads you need to start — our engineers will recommend the right HTX set and confirm lead time within 24 business hours.

Need help sizing your unit?

Send us your loads, altitude, and duty cycle — we'll spec the right model.

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