DC, single-phase and three-phase conductor analysis
Analyze Voltage Loss from Source to Load
Calculate volts lost, percent drop, load voltage, conductor loss and a larger size that meets your selected limit. Current can be entered directly or derived from watts, kilowatts or horsepower.Calculation task
Circuit and load
Conductor run
Advanced impedance and limit
Ohm’s law inputs
Use this mode for a known component or circuit resistance. Use conductor mode when resistance must be derived from wire material, size, temperature and route length.
Source-to-load visual
Electrical results
Resistance voltage drop calculator and Ohm’s law
Direct mode solves one missing electrical quantity from measured or specified values: resistance equals voltage divided by current, voltage equals current multiplied by resistance, current equals voltage divided by resistance, and power equals voltage multiplied by current. This component-level mode is separate from the conductor model below.
Voltage drop formulas
For a DC or single-phase resistive circuit, the round-trip conductor length gives Vdrop = 2IRL. For a balanced three-phase circuit, Vdrop = √3IRL. In advanced AC mode, the calculator uses the entered power factor and reactance in the approximate expression R cosφ + X sinφ.
Temperature and parallel conductors
Metal resistance rises with conductor temperature. This tool adjusts resistivity from 20°C using a material temperature coefficient. Parallel conductors divide the effective resistance and reactance by the number entered.
Interpreting 3% and 5%
Three percent and five percent are common design reference values, but requirements depend on equipment, circuit type and governing rules. The selected limit is a user-controlled design target, not an automatic compliance decision.
Voltage drop questions
Is cable length one way or round trip?
Enter one-way source-to-load length. The DC and single-phase formulas apply the return path automatically.
Can this recommend a wire size?
It reports the smallest listed size meeting the selected voltage-drop limit. You must still verify ampacity and installation requirements separately.
Why can AC results differ from simple DC resistance?
Power factor and conductor reactance can contribute to AC voltage drop, particularly on larger or longer circuits.