DG Size Calculator
Calculate Smarter. Work Faster.
Free DG set (diesel generator) sizing calculator — enter your connected load in kW, HP, or Amp to instantly estimate the required generator kVA rating/capacity, nearest standard size, full-load current, and fuel consumption.
Generator Load Details
Pick single or three phase, then enter your load, power factor, voltage, and safety margin.
Nearest reference DG set size — actual standard availability varies by manufacturer and region
Understanding DG Size Calculation
DG set sizing rule of thumb: kVA = kW ÷ 0.8, then add a planning margin for future load growth and normal operating variation — for example, a steady 80 kW load needs roughly a 100–125 kVA generator, not the bare 100 kVA calculated figure. Motor starting performance is a separate consideration from this margin and needs its own starting-kVA or voltage-drop assessment, especially for large motors starting direct-on-line — see the section below. Sizing a diesel generator (DG set) correctly is a balance between reliability and cost: an undersized generator will stall, overheat, or trip under motor-starting surges and peak demand, while an oversized one runs inefficiently at light load, wastes fuel, and costs more upfront. This calculator estimates the right DG set capacity for a given electrical load by converting the real power demand (kW) into the apparent power (kVA) a generator must be rated for, then matching that figure against a reference series of commonly available DG set sizes. It also estimates the full-load current the DG set will supply and the approximate diesel fuel consumption per hour, both useful figures when planning fuel storage and the outgoing cable or breaker from the generator.
The required DG capacity is found from DG Size (kVA) = Load (kW) ÷ PF, since a generator's nameplate is always rated in kVA while the actual connected load is usually expressed in kW; dividing by the power factor accounts for the reactive power the generator must also supply. A safety margin is then added on top of this calculated value, since real installations rarely run at a perfectly steady, ideal load — motor starting surges, future load additions, and day-to-day demand fluctuations all call for some spare capacity.
The resulting current draw is calculated using I = (kVA × 1000) ÷ (√3 × V) for a three-phase supply, or I = (kVA × 1000) ÷ V for single-phase, which determines the cable and breaker sizing on the generator's output. Fuel consumption is approximated using a commonly used diesel-generator rule of thumb of roughly 0.27 litres per hour for every kW of load, though actual consumption varies by engine efficiency and load factor.
Worked example: A facility has a three-phase connected load of 80 kW at a power factor of 0.8, supplied at 415 V, with a 20% safety margin. The base DG capacity is kVA = 80 ÷ 0.8 = 100 kVA. Adding the 20% margin: 100 × 1.20 = 120 kVA, which would typically be rounded up to the nearest standard DG size of 125 kVA. The full-load current at 415 V is I = (120 × 1000) ÷ (1.732 × 415) ≈ 167.0 A, and estimated fuel consumption is roughly 80 × 0.27 ≈ 21.6 L/hr.
125 kVA DG load calculation (reverse direction): if you already have a 125 kVA DG set and want to check how much load it can safely carry, work backward using the same convention: recommended continuous load ≈ DG capacity × PF ÷ (1 + margin%). At PF 0.8 and a 20% margin, that's 125 × 0.8 ÷ 1.20 ≈ 83.3 kW — treat this as a planning estimate, not the generator's actual prime/standby rating, which is set by the manufacturer's datasheet.
This tool is especially useful for facility engineers and contractors selecting a backup or prime power DG set, sizing the generator's output cable and protection, or estimating fuel budget and tank capacity for continuous or standby operation.
kW vs kVA: Why Generators Are Never Rated in kW Alone
Real power (kW) is the power that actually does useful work — turning a motor shaft, lighting a bulb, heating an element. Apparent power (kVA) is the total power the generator's alternator and windings must be capable of delivering, including the reactive component absorbed and released by inductive loads such as motors, transformers, and fluorescent or induction lighting ballasts. The ratio between the two is the power factor: kW = kVA × PF. Because the generator's physical winding size and heat dissipation are governed by current (and therefore by kVA, not kW), manufacturers always publish a kVA nameplate rating. A DG set rated 100 kVA at 0.8 PF can deliver 80 kW of real power — trying to draw 100 kW of real load from it, even momentarily, will overload the alternator regardless of the kVA figure on the nameplate.
Why Motor Starting Loads Need Extra Margin
Induction motors, pumps, compressors, and air-conditioning compressors typically draw 5 to 7 times their full-load current for a fraction of a second at start-up (direct-on-line starting). A generator sized only for the steady-state running load can experience a large, sudden voltage dip or stall entirely when such a motor starts, especially if the starting motor represents a large fraction of the total connected load. This is one reason a planning margin is commonly applied on top of the calculated running kVA, and why installations with large single motors — borewell pumps, chillers, or big compressors — often need either a larger safety margin, a soft starter/VFD on the motor, or a generator explicitly sized for the starting kVA rather than just the running kVA.
How to Use This DG Size Calculator
- Select the phase type — single phase for smaller domestic or shop loads, three phase for industrial and commercial installations.
- Enter the connected load in kW and the expected power factor (typically 0.8 for a mixed motor and lighting load; check your electricity bill or panel meter for a more accurate figure).
- Enter the supply voltage (commonly 230V single-phase or 400/415V three-phase, or use the quick presets for your region) and a safety margin percentage as a planning allowance — the appropriate value depends on your motor starting loads and expected expansion.
- Click Calculate DG Size to see the recommended standard DG capacity in kVA, the full-load output current, and the estimated diesel consumption per hour.
Common Mistakes When Sizing a Generator
- Sizing purely on kW without converting to kVA. Buying a "100 kW" generator when the actual requirement is 100 kVA at 0.8 PF (i.e. only 80 kW usable) is a frequent and costly sizing error.
- Ignoring motor starting surges. A generator that comfortably handles the running load can still stall or trip when a large motor starts, if no allowance is made for inrush current.
- Skipping the safety margin. Sizing exactly to the calculated load leaves no headroom for future expansion, seasonal peak loads, or day-to-day demand variation.
- Using an unrealistic power factor. Assuming PF = 1 for a load that is actually 0.75–0.85 (typical for motor-heavy loads) will undersize the generator; use your actual metered power factor where possible.
- Confusing standby and prime power ratings. A generator rated for occasional standby duty is not necessarily suitable for continuous, daily prime power operation at the same load — check the manufacturer's duty rating.
Standard DG Size Chart (kVA)
The table below lists the same standard DG (diesel generator) sizes in kVA that this calculator's reference series uses to round your calculated capacity up to a realistic, commonly available rating. Treat this as a general reference chart, not a guarantee of availability — actual standard DG sizes and step increments vary by manufacturer and region, so confirm the exact catalogue sizes with your local supplier before finalizing a purchase.
| Standard DG Sizes (kVA) |
|---|
| 5, 7.5, 10, 15, 20, 25, 30, 40, 50 |
| 62.5, 75, 82.5, 100, 125, 160 |
| 200, 250, 320, 380, 500, 625, 750 |
| 1000, 1250, 1500, 2000, 2500 |
Illustrative DG Capacity Ranges and Common Applications
| DG Size (kVA) | Typical Application | Approx. Full-Load kW (0.8 PF) |
|---|---|---|
| 5–10 | Home / small shop backup | 4–8 kW |
| 15–30 | Small office / retail outlet | 12–24 kW |
| 62.5–125 | Small commercial building / clinic | 50–100 kW |
| 160–320 | Mid-size industrial unit | 128–256 kW |
| 500–1000+ | Large factory / data centre / hospital | 400–800 kW+ |
These are illustrative capacity ranges for context, not an exact match to this calculator's reference series — actual available DG set sizes vary by manufacturer and region. Always confirm exact standard sizes and duty ratings with the manufacturer's catalogue.
DG Sizing by Voltage and Region
The kVA sizing formula itself (kVA = kW ÷ PF) is universal — only the supply voltage, and which reference kVA sizes are locally common, change by region. This calculator supports common low-voltage generator output voltages used across India, the UK and Europe, the USA and Canada, the Middle East, Australia, and South Africa, plus any custom voltage.
| Region | Common Low-Voltage Generator Output |
|---|---|
| India | 415V three-phase / 230V single-phase |
| UK & Europe | 400V three-phase / 230V single-phase |
| USA | 480V or 208V three-phase (varies by facility) |
| Canada | 600V or 208V three-phase (varies by facility) |
| Australia | 400V three-phase / 230V single-phase |
| Middle East | 400V three-phase / 230V single-phase |
| South Africa | 400V three-phase / 230V single-phase |
For a given kW load and power factor, the DG kVA demand itself doesn't depend on voltage — voltage mainly determines the resulting line current. Which DG set sizes are readily available, and their standard step sizes, varies by manufacturer and region; treat the reference rating from this calculator as a planning starting point, then confirm actual standard availability with your local DG supplier before specifying.
Frequently Asked Questions
Content last reviewed: July 2026
Why is DG capacity rated in kVA instead of kW? +
A generator must be able to supply both the real power (kW) that does useful work and the reactive power drawn by inductive loads like motors. kVA represents this total apparent power the generator's windings and alternator must handle, so nameplates are always rated in kVA rather than kW.
How much safety margin should I add? +
There is no universal margin. A planning allowance such as 15–25% may be used for future load growth and normal operating variation, but motor starting performance should be assessed separately based on starting current, voltage dip, motor size and starting method. Installations with large motors starting direct-on-line, or expected rapid expansion, typically need a larger allowance.
How accurate is the fuel consumption estimate? +
The 0.27 L/kWh figure is a widely used field rule of thumb for diesel gensets running near full load. Actual fuel consumption depends on engine, load, ambient conditions, altitude and manufacturer data, so always cross-check against the manufacturer's fuel consumption chart for critical sizing.
Are these calculators accurate enough for professional use? +
The calculator uses standard electrical sizing formulas and is suitable for preliminary planning and estimation. For safety-critical, procurement, protection, motor-starting, or code-compliance decisions, verify the result against the generator manufacturer's data and applicable local requirements, and have it reviewed by a licensed engineer.
What size DG set do I need for a home or small office? +
For a typical home backup load of 3–5 kW at 0.8 power factor with a 20% margin, a 5–7.5 kVA single-phase DG set is usually sufficient. For a small office or shop with 15–20 kW connected load, a 25–30 kVA three-phase set is a common starting point, though the exact figure depends on motor starting loads such as air conditioners or pumps. Enter your own numbers above for a precise recommendation.
Should I size a DG set for standby or prime power use? +
Standby-rated generators are sized for occasional backup use during grid outages and typically run at a lower average load factor, while prime-rated generators are designed for continuous or regular daily operation at a sustained load with a smaller overload allowance. Prime power applications generally need a larger safety margin and a genset explicitly rated for continuous duty by the manufacturer.
Can I connect a DG set directly in parallel with grid supply? +
No, not without proper synchronizing and protection equipment. A standard backup DG installation uses an automatic or manual changeover switch that ensures the generator and grid supply are never connected to the load simultaneously, both for safety and to prevent damage to the generator from out-of-phase paralleling.
How does altitude or ambient temperature affect DG output? +
Diesel engines lose power output at higher altitude (thinner air reduces combustion efficiency) and at higher ambient temperature (reduced air density and cooling capacity). Manufacturers publish derating charts for both factors — for installations above roughly 1000m altitude or in consistently hot climates, check the derated output rather than the sea-level nameplate rating.
Is DG rating the same as DG capacity? +
Yes — "DG rating" and "DG capacity" are generally used interchangeably to mean the generator's rated output, expressed in kVA (apparent power). Some manufacturers distinguish a standby rating from a prime rating for the same physical generator, so when comparing a "rating" figure between two DG sets, confirm both are quoted under the same duty class (standby vs. prime) before treating them as directly comparable.
What are the standard DG sizes in kVA? +
Common standard DG (diesel generator) sizes in kVA include 5, 7.5, 10, 15, 20, 25, 30, 40, 50, 62.5, 75, 82.5, 100, 125, 160, 200, 250, 320, 380, 500, 625, 750, 1000, 1250, 1500, 2000, and 2500 kVA — see the standard DG size chart above for the full reference list this calculator uses. Actual available sizes and step increments still vary by manufacturer and region, so confirm exact catalogue sizes with your local supplier.
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