Cable Derating Factors: 5 Crucial Checks for Safe Sizing

Share:
Electrical Design & Calculations
Cable Derating Factors: 5 Crucial Checks for Safe Cable Sizing

A cable that looks big enough in the catalogue can overheat on site once real temperature and grouping are applied.

IEC 60364 5 52 Ampacity Grouping Factor Ambient Temperature

Cable derating factors reduce the catalogue current rating of a cable to match real installation conditions. Ignoring them is one of the most common causes of overheated cables and nuisance tripping.

Hello everyone, today we are going to learn what cable derating factors are, which conditions reduce a cable rating, and how to apply the correction step by step with a worked example.
cable derating factors

What Are Cable Derating Factors?

Cable derating factors are multipliers below 1.0 that reduce the tabulated current rating of a cable when site conditions are worse than the standard reference conditions. They are a core part of cable sizing and ampacity calculations.

Catalogue ratings assume ideal conditions, such as 30 °C air, a single circuit and standard soil. Real plants have hot roofs, crowded cable trays and dry soil, all of which stop heat escaping.

Standard table of cable current rating derating factors for installation conditions
Standard table of cable current rating derating factors for installation conditions: Image credit: ELEK Software

Heat is the real limit. XLPE insulation is typically rated for a 90 °C conductor temperature and PVC for 70 °C, and any condition that traps heat pushes the conductor toward those limits.

Standards such as IEC 60364 5 52, BS 7671 and AS/NZS 3008 publish tables of correction factors. In India, designers usually follow IEC values along with the cable maker catalogue.

5 Crucial Cable Derating Factors to Check

1
Ambient Air Temperature
Correct for air hotter than the 30 °C reference.
2
Ground Temperature
Correct buried cables for soil hotter than 20 °C.
3
Soil Thermal Resistivity
Dry or sandy soil holds heat and lowers the rating.
4
Depth of Laying
Deeper cables lose heat more slowly.
5
Grouping
Cables close together heat each other.

Not every factor applies to every cable. A cable on a tray needs air temperature and grouping, while a buried cable needs ground temperature, soil resistivity, depth and grouping.

Other conditions such as direct sunlight, thermal insulation and harmonic currents can also need correction. ELEK lists nine factors in total for Australian practice.

Typical IEC Correction Values

ConditionValueXLPE FactorPVC Factor
Ambient air30 °C1.001.00
Ambient air40 °C0.910.87
Ambient air50 °C0.820.71
Bunched circuits2 circuits0.800.80
Bunched circuits3 circuits0.700.70
Bunched circuits6 circuits0.570.57

These values come from IEC 60364 5 52 tables B.52.14 and B.52.17. PVC loses rating faster with heat because its maximum temperature is lower.

In hot Indian summers, roof and outdoor trays often see 45 to 50 °C. That alone can cut ampacity by close to 20 percent for XLPE and nearly 30 percent for PVC.

Cable Derating Formula With a Worked Example

Iz = It × Ca × Cg × Cs × Cd

Iz = derated current capacity
It = tabulated current rating
Ca = ambient temperature factor
Cg = grouping factor
Cs, Cd = soil and depth factors for buried cable

Worked example, XLPE cable on tray:
It = 150 A
Ambient 40 °C, Ca = 0.91
3 circuits bunched, Cg = 0.70
Iz = 150 × 0.91 × 0.70
Iz = 95.6 A

The cable drops from 150 A to about 96 A just from heat and grouping. If the load is 110 A, you must choose a bigger size or spread the circuits apart.

After derating, also check voltage drop and short circuit withstand. The final size is the largest one needed by any of these checks.

Buried Cables and Soil Conditions

Conductor HeatCurrent creates I²R losses
InsulationHeat passes through insulation and sheath
SoilSoil carries heat away from the cable
Ground SurfaceHeat finally leaves to the air
Rating LimitConductor must stay below its limit

Buried cables depend on the soil to remove heat. IEC uses 2.5 K.m/W as its reference soil resistivity, and wetter soil at 1.0 K.m/W gives a factor of 1.18, which actually increases the rating.

Dry, sandy or backfilled soil can be worse than the reference. Ask for a site soil survey on large projects instead of guessing.

Depth also matters because deeper cables are further from the cool surface. Group spacing in trenches has its own factor tables separate from tray grouping.

Where Derating Is Most Often Missed

Rooftop Solar Cables
High sun and ambient heat on roofs and walkways.
Crowded Cable Trays
Many circuits bunched in one tray layer.
Motor Feeders
Long runs near hot process equipment.
Buried Trenches
Several circuits laid side by side.
Panel Wiring
Tightly packed wiring inside hot enclosures.
Harmonic Loads
Neutral heating from VFDs and IT loads.

Motor circuits deserve extra care, as explained in cable sizing for motor feeders. Starting current and ambient heat together can push small cables past their limit.

Crowded trays also affect fill limits. Our guide on cable tray fill calculation pairs well with grouping derating.

Harmonic currents from drives heat the neutral conductor as well, as shown in THD calculation. Large harmonic loads may need a reduction factor or a bigger neutral.

How to Apply Cable Derating Factors on a Project

First fix the installation method, because the tabulated rating depends on it. Then list every condition along the route and pick the worst section, since the cable is only as good as its hottest point.

Multiply all relevant factors and apply them to the tabulated rating. Then confirm that the derated rating is above the design current and coordinated with the MCCB rating.

Record the factors used in the cable schedule, along with the earth conductor size. This makes future checks easy when new circuits are added to the same tray.

Cable Derating Calculator

Derated Cable Capacity
Derated capacity
95.6 A derated, cable is adequate

Enter 1.00 for any factor that does not apply. Use the cable maker tables when they differ from general IEC values.

Benefits of Correct Derating
  • Cables stay below their temperature limit.
  • Longer insulation life.
  • Fewer nuisance trips and hot spots.
  • Compliance with wiring standards.
Risks of Ignoring It
  • Overheated insulation and early failure.
  • Fire risk in crowded trays.
  • Unexpected voltage drop.
  • Costly rework after commissioning.

Cable Sizing Criteria PDF

PDF
Electrical Cable Sizing Criteria
Design specification showing Iz = Kt × I0 and IEC based derating factors

Derating Factor Calculation Video

Cable Derating Factors FAQ

What are cable derating factors?
They are multipliers that reduce a cable rating for real site conditions.
What is the reference ambient temperature?
IEC uses 30 °C for air and 20 °C for ground.
How are several factors combined?
Multiply them all together and apply the result to the tabulated rating.
What is the grouping factor for 3 bunched circuits?
IEC gives 0.70 for three bunched circuits.
Does wet soil help?
Yes, lower soil resistivity removes heat better and can raise the rating.
Is PVC or XLPE more affected by heat?
PVC is more affected because its maximum temperature is lower.
Which section of the route decides the rating?
The hottest and most crowded section.

Related Articles

External References

What We Learn Today

  • Derating reduces catalogue ratings to match real heat and grouping conditions.
  • All relevant factors are multiplied and applied to the tabulated rating.
  • The hottest, most crowded section of the route decides the cable size.
I hope you like above blog. There is no cost associated in sharing the article in your social media. Thanks for reading!! Happy Learning!!

Leave a Reply

Your email address will not be published. Required fields are marked *