Wire & voltage

Wire Resistance Calculator

Wire resistance equals material resistivity multiplied by conductor length and divided by cross-sectional area. The temperature adjustment changes resistivity from its 20°C reference value.

Estimate conductor resistance, resistance per length, voltage loss, and heat loss from material, size, length, and temperature.

Enter values

Advanced assumptions

Calculated result

Calculated conductor resistance

Calculating…

Calculated locally in your browser

Planning math only. Verify equipment specifications and installation requirements separately.

Wire resistance relationship diagramAn original simplified wire diagram paired with the current calculator result.AWG · LENGTH · ρCONDUCTOR PATHRESULTCalculated locallyFORMULA VISIBLEINPUTS EDITABLE
Wire Resistance Calculator relationship diagram. The illustration supports the text result; it is not a wiring or installation drawing.

What this calculator returns

Real cable construction, terminations, strand geometry, and AC effects can add resistance. Use the custom project specification when it is available.

Formula and variables

The calculation runs entirely in your browser. Static formulas, definitions, examples, and tables remain readable without JavaScript.

Formula

R = ρ20 × [1 + α(T - 20°C)] × L / A; Vloss = I × R; Ploss = I² × R.

Vdrop
Voltage lost across the conductor path, in volts.
I
Current through the conductor, in amperes.
R
Electrical resistance of the modeled conductor path, in ohms.
ρ
Material resistivity at the modeled temperature, in ohm-metres.
L
Conductor length used by the selected path model.
A
Metal cross-sectional area of the conductor.

ρ20 is resistivity at 20°C, α is the linear temperature coefficient, L is total conductor length, and A is area.

Worked example

Worked example inputs and result
InputValue
Conductor materialCopper
Conductor size12 AWG
Conductor length100 ft
Length describesTotal conductor path
ResultA 100 ft total path of 12 AWG copper at 20°C is about 0.16 Ω using the stated resistivity model.

A 100 ft total path of 12 AWG copper at 20°C is about 0.16 Ω using the stated resistivity model.

Reference table

Calculated conductor resistance by AWG, material, and temperature. Values use the AWG geometry equation and the resistivity constants documented on Sources; they are not copied from an electrical code table.
AWGCu 20°C Ω/1000 ftCu 75°C Ω/1000 ftAl 20°C Ω/1000 ftAl 75°C Ω/1000 ftCu 20°C Ω/kmAl 20°C Ω/km
142.52543.07124.14005.05768.285313.5825
121.58821.93152.60363.18075.21078.5421
100.99881.21471.63742.00043.27705.3722
80.62820.76401.02981.25812.06093.3786
60.39510.48050.64760.79121.29612.1248
40.24850.30220.40730.49760.81521.3363

Frequently asked questions

Is this wire resistance result code compliant?

No. PowerTotals performs transparent electrical math and planning estimates. Installation decisions must be checked against equipment documentation, the adopted code, and the authority having jurisdiction.

Are my inputs uploaded?

No. Calculations run locally in your browser, and analytics never receives raw electrical values.

Why does temperature matter?

Metal resistance changes with temperature; the calculator applies a visible linear correction around 20°C.

Assumptions and limitations

  • Representative material constants and their technical sources are listed on the Sources page.
  • This is a DC resistance model.
  • Connection resistance is excluded.

Method and sources

Read the calculation methodology, review the technical sources, or browse the reference table index. Last reviewed .

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