Generator KVA to Cable Size Chart

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Generator KVA to Cable Size Chart
Generator KVA to Cable Size Chart

Selecting the correct cable size for a diesel (or) gas generator is one of the most important factors in any electrical installation. 

An undersized cable can overheat that cause voltage drop, damage connected equipment and create a serious fire hazard while an oversized cable adds unnecessary cost. 

This post provides a practical generator KVA to cable size chart which explains the formulas utilized to calculate current and cable size and explain through the key factors that influence correct cable selection for the generators ranging from small 15 KVA units to large 1000 KVA industrial generators.

KVA (or) kilovolt-ampere is the unit used to express the apparent power output of a generator. 

Unlike kilowatts (KW) which measure real power actually that is converted into usable work that KVA is for both real and reactive power in the electrical system. 

The relationship between KVA and KW depends on the power factor of the connected load that is commonly assumed to be 0.8 for standard generator applications. 

A generators KVA rating along with its voltage and power factor (PF) determines the full load current (FLC) that the cable connecting the generator to the distribution panel should safely carry.

Generator KVA Rating
Generator KVA Rating

Prevents Overheating

Undersized cables carrying current beyond their rated capacity heat up, degrading insulation and creating fire risk.

Minimizes Voltage Drop

Long cable runs with inadequate cross-sectional area cause voltage drop that is reducing equipment performance and efficiency.

Ensures Safety Compliance

Properly sized cables meet national and international electrical codes, protecting personnel and property.

Improves System Reliability

Correctly rated cables reduce nuisance tripping of protective devices and extend equipment life.

Optimizes Cost

Right sizing avoids the unnecessary expense of an oversized conductor while still meeting safety margins.

The first step in selecting a cable is calculating the generators full load current (FLC) using the standard three phase power formula: 

Current (A) = (KVA x 1000) / (1.732 x Voltage)

For a 415V three phase system this formula gives the approximate full load amperage the generator will supply. 

Once the full load current (FLC) is known the cable size is selected from manufacturer current carrying capacity tables factoring in the cable type (PVC or XLPE insulation), installation method (in air, in conduit or buried underground), ambient temperature and the length of the cable run since voltage drop becomes more significant over the longer distances.

Cable Size for a Generator
Cable Size for a Generator

Ambient Temperature

Higher ambient temperatures reduce a cables current-carrying capacity that is requiring a larger conductor (or) a derating factor.

Installation Method

Cables installed in conduit, buried underground (or) run in free air each have different heat dissipation characteristics & derating factors.

Cable Length & Voltage Drop

Longer cable runs need larger conductors to keep voltage drop within acceptable limits which is typically below 3% to 5%.

Grouping of Cables

Multiple cables bundled together generate more combined heat & may require an additional derating factor.

Cable Insulation Type

XLPE-insulated cables generally have a higher current rating than PVC insulated cables of the same size.

Type of Load

Motor loads, UPS systems and other non linear loads may need additional margin due to inrush current (or) harmonics.

The following chart provides commonly utilized cable size recommendations for standard 3 phase, 415V diesel generators based on an assumed power factor of 0.8, XLPE-insulated armored copper cable and standard ambient conditions. 

This chart is intended as a general reference

Note: Always verify with a qualified electrical engineer and local cable manufacturer current rating tables before finalizing a project.

Generator Rating (KVA)Full Load Current (Approx.)Recommended Copper Cable Size
15 KVA20 A4 sq mm
25 KVA35 A6 sq mm
40 KVA55 A10 sq mm
62.5 KVA87 A16 sq mm
82.5 KVA115 A25 sq mm
100 KVA140 A35 sq mm
125 KVA175 A50 sq mm
160 KVA225 A70 sq mm
200 KVA280 A95 sq mm
250 KVA350 A120 sq mm
320 KVA445 A150 sq mm
380 KVA530 A185 sq mm
500 KVA695 A240 sq mm
625 KVA870 A2 x 150 sq mm
750 KVA1040 A2 x 185 sq mm
1000 KVA1390 A2 x 240 sq mm

Note: Values are approximate & assume a single run copper armoured XLPE cable at 40°C ambient with standard derating. 

Generator KVA to Cable Size Chart
Generator KVA to Cable Size Chart

For Aluminum conductors – Cable size typically requires to increase by one to two sizes to carry the equivalent current safely.

Cable Selection Factors: Different Conditions

  • Copper Cable 
  • 3 Phase 
  • 415 V 
  • 50 Hz 
  • Power Factor: 0.8 
  • Ambient Temperature: 30°C
Generator Rating (kVA)Full Load Current (A)PVC Insulated Cable in Conduit / Tray (30°C)XLPE Insulated Cable in Conduit / Tray (30°C)XLPE Insulated Cable Direct in Ground (30°C)XLPE Insulated Cable in Air / Perforated Tray (30°C)
1013.94464
1520.866106
2027.710101610
2534.710161610
3041.616162516
4055.516252516
5069.425253525
75104.135507035
100138.850709550
125173.5709512070
150208.37012015070
200277.69515018595
250347.0120185240120
300416.4150240300150
350485.7185300400185
400555.2240400500240
500694.0300500630300

When the distance between the generator and the distribution panel exceeds approximately 30 to 50 meters voltage drop becomes a critical factor that can outweigh the current carrying capacity requirement alone. 

Voltage drop can be calculated using the formula: 

Voltage Drop (V) = (1.732 x Current x Length x Resistance per km) / 1000

Where 

Resistance values are obtained from the cable manufacturers technical datasheet. 

For critical (or) long distance installations running parallel cable runs is often more economical than using a single very large conductor.

Cable sizing for generators must always follow recognized standards to ensure safety and compliance. 

Common references include 

• IS 1255 and IS 7098 in India, 

• BS 7671 (IET Wiring Regulations) in the United Kingdom, 

• National Electrical Code (NEC) Article 445 in the United States and 

• IEC 60364 internationally. 

These standards define minimum cable ampacity, derating factors, earthing requirements and protective device coordination for generator installations.

  • Sizing the cables based on generator KVA rating alone without considering for cable length & voltage drop.
  • Ignoring an ambient temperature derating factors in hot climates (or) enclosed generator rooms.
  • Failing to account for cable grouping when multiple circuits run together in the same tray (or) conduit.
  • Using aluminium cable sizing charts interchangeably with copper cable charts without any adjustment.
  • Overlooking the requirement for a properly and accurately sized neutral & earth conductor alongside the phase conductors.

Choosing the correct appropriate cable size for a generator installation is important for safety, performance & long term reliability. 

While the generator KVA to cable size chart in this post provides a practical starting point for common ratings from 15 KVA to 1000 KVA actual cable selection must always factor in cable length, ambient conditions, installation method & applicable local electrical codes. 

Consulting a qualified electrical engineer & referring to the cable manufacturers current rating tables ensures that the final installation is both code compliant & safe for continuous operation.

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Rabert T
As an electrical engineer with 5 years of experience, I focus on transformer and circuit breaker reliability in 110/33-11kV and 33/11kV substations. I am a professional electrical engineer with experience in transformer service and maintenance. I understand electrical principles and have expertise troubleshooting, repairing, and maintaining transformers, circuit breakers, and testing them.