Electrical Cable Selection Guide

Cable Selection Guide

Professional Engineering Reference for Electrical Installations

Selecting the correct electrical cable is essential for ensuring safe, efficient, and reliable electrical systems. Incorrect cable sizing can lead to overheating, excessive voltage drop, energy losses, and potential equipment failure. This guide explains the key factors used by electrical professionals when selecting cables for residential, commercial, and industrial installations.

 

 

Determine the Electrical Load

The first step in cable selection is determining the current required by the electrical load. Accurate load current calculation ensures the cable can safely carry the electrical load without exceeding its thermal limit.

Load current depends on the equipment power rating, system voltage, power factor, and whether the system is single-phase or three-phase.

Current Calculation Formulas

Single Phase System

Current (A) = Power (W) ÷ Voltage (V)

Three Phase System

Current (A) = Power (W) ÷ (√3 × Voltage × Power Factor)

Select Cable Based on Ampacity

Ampacity refers to the maximum current a cable can safely carry without exceeding its temperature rating. It is the primary criterion for initial cable size selection.

  • Conductor material — copper vs. aluminium
  • Insulation type — PVC (70°C) vs. XLPE (90°C)
  • Installation method — conduit, tray, buried, free air
  • Ambient temperature — Nigeria’s 40°C standard requires derating
  • Cable grouping — grouped cables dissipate heat less efficiently

Cable Size Quick Selection Table

The table below provides a general engineering reference for copper conductors used in standard electrical installations.

Load Current (A) Typical Copper Cable Size
6 A 1.0 mm²
10 A 1.5 mm²
16 A 2.5 mm²
20 A 2.5 mm²
32 A 4 mm²
40 A 6 mm²
63 A 10 mm²
80 A 16 mm²
100 A 25 mm²
125 A 35 mm²
160 A 50 mm²
200 A 70 mm²
250 A 95 mm²
315 A 120 mm²
400 A 185 mm²
500 A 240 mm²
630 A 300 mm²

Important: Actual cable size must also account for installation conditions, ambient temperature, grouping factors, and voltage drop requirements. This table is a starting reference only.

Consider Voltage Drop

Voltage drop occurs when electrical energy is lost along the cable due to conductor resistance. Excessive voltage drop can cause reduced equipment performance, overheating, and inefficient power delivery. Longer cable runs require larger conductors to maintain acceptable voltage levels.

Circuit Type Maximum Recommended Voltage Drop
Lighting Circuits 3%
Power Circuits 5%

Conductor Material Selection

Electrical cables are manufactured using copper or aluminium conductors. Each material has distinct characteristics that make it more suitable for different applications.

Copper Conductors

  • Higher conductivity
  • Lower resistance
  • Smaller size required
  • Building wiring
  • Industrial installations
  • Control circuits

Aluminium Conductors

  • Lighter weight
  • Lower material cost
  • Large power distribution
  • Utility feeders
  • Underground distribution
  • Overhead lines

Installation Conditions

Cable performance depends greatly on how and where it is installed. High temperatures or tightly grouped cables reduce the cable’s ability to dissipate heat, requiring ampacity derating.

  • Cables installed in conduit or pipe
  • Cables buried directly underground
  • Cables supported on trays in industrial facilities
  • Cables installed freely in open air
  • Grouped cables in confined spaces

Environmental & Mechanical Considerations

Cable selection must account for the conditions the cable will face throughout its operating life. Proper insulation and protective sheathing ensure long service life and safety.

  • Moisture exposure — wet or submerged environments
  • Chemical exposure — industrial solvents, acids, or oils
  • UV radiation — outdoor and rooftop installations
  • Mechanical stress — crushing, vibration, or flexing loads

Cable Resistance Reference Table

Electrical resistance affects both voltage drop and heat generation in cables. The values below represent typical DC resistance at 20°C reference temperature, as specified by IEC 60228.

Size (mm²) Copper (Ω/km) Aluminium (Ω/km)
1.5 mm² 12.10 20.40
2.5 mm² 7.41 12.10
4 mm² 4.61 7.41
6 mm² 3.08 4.95
10 mm² 1.83 3.08
16 mm² 1.15 1.91
25 mm² 0.727 1.20
35 mm² 0.524 0.868
50 mm² 0.387 0.641
70 mm² 0.268 0.443
95 mm² 0.193 0.320
120 mm² 0.153 0.253
150 mm² 0.124 0.206
185 mm² 0.099 0.164
240 mm² 0.075 0.125
300 mm² 0.060 0.100
400 mm² 0.047 0.077
500 mm² 0.036 0.060
630 mm² 0.028 0.047

Practical Examples of Cable Selection

Example 1

Load current
45 A
Cable run
30 m
System
Single Phase
Recommended
10 mm² Cu

Example 2

Load current
120 A
Cable run
50 m
System
Three Phase
Recommended
50 mm² Cu

Engineering Tools

Absolute Cablemart Ltd provides free online engineering tools to support accurate cable selection for electrical system design.

Cable Selection for Multi-Core Cables

Electrical installations often use multi-core cables, where two or more insulated conductors are contained within a single outer sheath. These cables simplify installation, reduce conduit requirements, and offer integrated mechanical protection.

Cable Type Typical Application
2-Core Cable Single-phase circuits (live and neutral)
3-Core Cable Single-phase with earth conductor
3.5-Core Cable Three-phase distribution with reduced neutral
4-Core Cable Three-phase + neutral systems
5-Core Cable Three-phase with separate earth conductor

Effect of Multiple Cores on Current-Carrying Capacity

When several conductors are grouped within the same cable, heat dissipation is reduced, which lowers the allowable current capacity compared with single-core cables. Engineering standards recommend applying derating factors accordingly.

Cable Type Typical Ampacity Factor
Single Core 1.00 (reference)
2-Core Cable 0.90
3-Core Cable 0.85
4-Core Cable 0.80

Worked Example: A single-core 50 mm² copper cable has an ampacity of 150 A. For a 4-core cable, the allowable current is 150 × 0.80 = 120 A.

Engineering Example — Three-Phase Motor Supply

Motor Supply Calculation

Motor load
75 A
Cable type
3-Core Cu
Ref. ampacity (95 mm²)
232 A
After derating (×0.85)
≈ 197 A
Suitable
95 mm² 3C

When Multi-Core Cables Are Preferred

  • Limited installation space
  • Mechanical protection required
  • Faster installation needed
  • Cleaner cable routing desired
  • Industrial motors & drives
  • Underground feeders

Installation Methods & Their Impact

The installation method significantly affects a cable’s current-carrying capacity because it determines how effectively heat can dissipate from the conductor. Engineers must account for installation conditions during cable selection to prevent overheating and ensure safe operation.

Installation Method Description Ampacity Factor
Free Air Open installation with maximum heat dissipation 1.00
Cable Tray Supported on trays in industrial facilities 0.95
Conduit Installed inside protective conduit or pipe 0.90
Direct Buried Cable installed directly underground in soil 0.85

Worked Example: A cable rated at 200 A in free air installed in conduit has an allowable current of 200 × 0.90 = 180 A.

Practical Engineering Recommendation

Factors to consider in every cable selection decision

  • Load current (A)
  • Voltage drop limit
  • Conductor material
  • Installation method
  • Ambient temperature
  • Cable grouping
  • Environmental conditions
  • Regulatory compliance

Conclusion

Correct cable selection is essential for electrical safety, efficiency, and long-term system reliability. By evaluating load current, conductor material, voltage drop, installation conditions, and applicable engineering standards, professionals can ensure optimal cable performance throughout the life of any installation.

Following internationally recognised engineering practices — such as those referenced by the International Electrotechnical Commission — helps maintain the highest levels of safety and system performance on every project.

Need cables for your next project? Our technical team is available to assist with cable sizing, BOQ review, and specification verification — and responds within 24 hours.Contact Our Technical Team

 

Source: www.absolutecablemart.com.ng

All resistance values per IEC 60228. Ampacity values per IEC 60364. For engineering use only — all installations must be verified by a qualified electrical engineer.

1 Comment

  1. Expert Insights – Powering Nigeria’s Electrical Solutions - Absolute Cablemart Limited
    March 23, 2026

    […] Cable Selection Guide — helps users choose the right cable based on application and load requirements […]

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