TryBuildCalc

3-Phase Voltage Drop Calculator (Three-Phase Feeder Drop)

Calculate 3-phase voltage drop.

Inputs

Solve For
Load Entered As
A
V

ℹ️Common values: 120V, 208V, 240V, 277V, 480V (US); 230V, 400V (many other countries).

ℹ️Not sure what size you have (or need)? Use the Wire Size Calculator instead — this tool checks a specific size you already have in mind.

ℹ️Distance from the panel/breaker to the load, one way — not round trip.

ℹ️The threshold your result is checked against.

Cost

Enable Cost Estimation?

Voltage Drop: 0.89% (4.26 V)

Within your 3.0% allowed limit

Circuit Details

Wire size6 AWG (Copper)
Load current50.0 A
System480 V, three-phase
One-way run length100.0 ft (30.5 m)
Receiving-end voltage475.7 V
Ampacity sanity check (75°C, no derating)Looks adequate (65 A base)

Compare Across Wire Sizes

AWGDrop %Result
14 AWG5.66%Fail
12 AWG3.56%Fail
10 AWG2.24%Pass
8 AWG1.41%Pass
6 AWG (selected)0.89%Pass
4 AWG0.56%Pass
3 AWG0.44%Pass
2 AWG0.35%Pass
1 AWG0.28%Pass
1/0 AWG0.22%Pass
2/0 AWG0.17%Pass
3/0 AWG0.14%Pass
4/0 AWG0.11%Pass

Row highlighted in blue is your selected wire size. "Pass"/"Fail" is against your 3.0% allowed drop only — always confirm ampacity separately with the Wire Size Calculator.

Assumptions Used

Voltage drop uses K = 12.9 (copper) / 21.2 (aluminum) ohm-cmil/ft — the same formula and constants as the Wire Size Calculator, so results stay consistent between the two tools. The ampacity sanity check is informational only (base 75°C table, no derating) — use the Wire Size Calculator for a full ampacity and breaker sizing check.

Need to find the right wire size from scratch instead of checking one? Wire Size Calculator →

Voltage Drop VisualizationSource480 VLoad475.7 V0.89% dropLength: 100.0 ftDiagram simplified for clarity (not to scale)

Looking for the verification checklist, reference tables, tips, or common mistakes?See the complete Voltage Drop Calculator.

Three-phase voltage drop check

Three-phase circuits use a 1.732 (√3) multiplier instead of single-phase's 2x — this page is pre-set to a typical three-phase feeder scenario at 480V.

Edit the load, wire size, or length above to check your actual three-phase circuit.

  • Uses the 1.732 multiplier specific to three-phase, not single-phase's 2x.
  • Higher system voltages (like 480V) common in three-phase work reduce drop percentage for the same current.
  • Switch Phase back to Single-phase for a standard branch circuit instead.

Voltage Drop Formula: How Is It Calculated?

The same underlying resistance-based formula runs in both directions — solving for drop given a length, or solving for the maximum length given a target drop percentage.

Step 1 — Voltage Drop (given length)

Voltage Drop (V) = (2 × K × I × D) / CM [single-phase]

Voltage Drop (V) = (1.732 × K × I × D) / CM [three-phase]

Drop % = (Voltage Drop ÷ System Voltage) × 100

K is a resistivity constant (12.9 for copper, 21.2 for aluminum, ohm-circular-mil/ft), I is the load current, D is the one-way run length in feet, and CM is the selected wire size's circular-mil area. This is the same formula and constants used by the Wire Size Calculator, so both tools always agree on the same inputs.

Step 2 — Maximum Length (given target drop %)

Allowed Voltage Drop (V) = System Voltage × Max Drop % ÷ 100

Maximum Length (ft) = (Allowed Voltage Drop × CM) ÷ (2 × K × I) [single-phase, 1.732 for three-phase]

This is the same formula solved for distance instead of voltage — useful when the question is "how far can this wire go?" rather than "what's the drop at this length?"

Step 3 — Receiving-End Voltage & Pass/Fail

Receiving Voltage = System Voltage − Voltage Drop

Passes = Drop % ≤ Max Allowed %

The result is checked against your selected maximum (commonly 3% for a single branch circuit or feeder, per NEC's recommendation) and flagged as passing or failing that threshold.

Worked Example

This example walks through your current inputs above, using the same steps as the Formula section.

Input Values Used

InputValueWhy it is used
Wire size / material6 AWG, copperSets circular-mil area and resistivity constant K
Load current / voltage50.0 A, 480 V, three-phaseSets current and the drop-percent base
Solve for / max dropVoltage drop, 3.0% maxSets which formula direction runs and the pass/fail threshold

Step 1 — Voltage Drop

CalculationResult
Voltage drop at 100.0 ft4.26 V (0.89%)
Receiving-end voltage475.7 V (passes the 3.0% limit)

Therefore, 6 AWG copper carrying 50.0A at 480V over 100.0 ft has a 0.89% drop, which passes your 3.0% limit.

Disclaimer: This calculator provides approximate results for planning and estimation purposes only. Actual requirements may vary based on site conditions, materials, workmanship, and local building regulations. Always consult a qualified engineer, architect, or construction professional before making final decisions.

FAQ

The multiplier reflects the phase relationship between conductors in a balanced three-phase system, which differs from single-phase's simple out-and-back conductor loop — 1.732 (√3) is the standard factor used industry-wide for this calculation.
For the same current, length, and wire size, yes — the 1.732 multiplier is smaller than single-phase's 2, so three-phase shows proportionally less drop. Three-phase systems also commonly run at higher voltages, further reducing drop percentage.