TryBuildCalc

10 AWG Wire Amp Rating Calculator (30A Circuit Reference)

Check 10 AWG wire's amp rating.

Inputs

Load Entered As
A
V

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

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

ℹ️The wire's own insulation rating (check the product's markings, e.g. THHN, THWN-2).

ℹ️Per NEC 110.14(C) — the breaker/panel/device's own temperature rating. Most equipment rated 100A or less is only terminal-rated for 60°C or 75°C, even with 90°C wire installed. The calculator automatically uses the lower of this and the insulation rating above.

Continuous Load (3+ hours)?

Advanced (NEC Derating)

Adjust for Conductor Count / Ambient Temperature?

Conduit Sizing

Also Size the Conduit?

Cost

Enable Cost Estimation?

Recommended Wire Size: 10 AWG (Copper)

Sized by ampacity, not voltage drop — recommended breaker/OCPD: 25A

Ampacity Check

Design current: 24.0 A

Minimum size by ampacity: 10 AWG

Derating factor applied: 1.00×

Final wire's derated ampacity: 35.0 A

Voltage Drop Check

Actual load current: 24.0 A

Minimum size by voltage drop: 12 AWG

Allowed drop: 3.0%

Final wire's actual drop: 1.24% (2.98 V)

Circuit Summary

System240 V, single-phase
One-way run length50.0 ft (15.2 m)
Insulation / terminal rating75°C (167°F) — most common (THWN-2, terminals) / 75°C (167°F) — most common (THWN-2, terminals)
Governing rating (NEC 110.14(C))75°C (167°F) — most common (THWN-2, terminals)
Small-conductor OCPD cap30 A (NEC 240.4(D))

Assumptions Used

NEC Table 310.16 ampacity, NEC 110.14(C) governing rating, NEC 240.4(D) small-conductor cap, NEC 310.15(C)(1)/(B)(1)(1) derating, NEC Chapter 9 conduit fill (THHN/THWN-2, uniform AWG). Voltage drop uses K = 12.9 (copper) / 21.2 (aluminum) ohm-cmil/ft. This is a reference estimate — confirm against the code edition adopted in your jurisdiction and a licensed electrician before final installation.

Wire Run VisualizationPanelLoad10 AWG24.0 ALength: 50 ftDiagram simplified for clarity (not to scale)

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

10 AWG copper wire amp rating and circuit check

10 AWG copper is a common conductor for a 30A circuit (window AC units, some water heaters, dryers on certain configurations) — this page is pre-set to a typical 24A continuous-equivalent load.

Edit the load, voltage, or length above to check whether 10 AWG is sufficient for your specific circuit.

  • 10 AWG copper's small-conductor OCPD cap is 30A, regardless of table ampacity at higher insulation columns.
  • Table ampacity: 30A (60°C), 35A (75°C), 40A (90°C), before any derating.
  • Increase load or length above to see when 10 AWG is no longer sufficient.

Wire Size Formula: How Is AWG Gauge Calculated?

Two independent checks are run, and the wire recommended is whichever check requires the larger conductor.

Step 1 — Design Current

Design Current = Load Current × 1.25 (if continuous load, per NEC 210.19/210.20)

Design Current = Load Current (if not continuous)

A continuous load (running 3+ hours) needs a 25% safety margin applied to the wire and breaker sizing, per NEC's continuous-load rule. Voltage drop, further below, uses the actual (non-inflated) current instead.

Step 2 — Ampacity Check

Governing Rating = the LOWER of Insulation Rating and Terminal/Equipment Rating (NEC 110.14(C))

Derated Ampacity = Table Ampacity (at Governing Rating) × Conductor-Count Factor × Ambient-Temp Factor

Pick the smallest AWG where Derated Ampacity ≥ Design Current

Table ampacity comes from NEC Table 310.16, by material (copper/aluminum) and the governing 60/75/90°C column — not just the wire's own insulation rating, since most equipment rated 100A or less is only terminal-rated for 60°C or 75°C even when 90°C wire is installed. 14/12/10 AWG are additionally capped at 15A/20A/30A (copper) regardless of table ampacity, per NEC 240.4(D).

Step 3 — Voltage Drop Check

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

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

Pick the smallest AWG where (Voltage Drop ÷ System Voltage) × 100 ≤ Max Allowed %

K is a resistivity constant (12.9 for copper, 21.2 for aluminum, ohm-circular-mil/ft), I is the actual load current, D is the one-way run length in feet, and CM is the conductor's circular-mil area.

Step 4 — Final Recommendation

Recommended AWG = the larger of the ampacity-check size and the voltage-drop-check size

Both requirements must be satisfied at once, so the calculator always recommends whichever check needs the bigger conductor — never just the smaller of the two.

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
Load current / voltage24.0 A, 240 V, single-phaseSets design current and the voltage-drop base
Material / rating / lengthCopper, governed by 75°C (167°F) — most common (THWN-2, terminals), 50.0 ftSets ampacity table column (lower of insulation/terminal rating) and voltage-drop distance
Derating / max drop1.00× derate, 3.0% max dropSets the derated ampacity and voltage-drop threshold

Step 1 — Ampacity Check

CalculationResult
Design current24.0 A
Minimum size by ampacity10 AWG

Step 2 — Voltage Drop Check

CalculationResult
Minimum size by voltage drop12 AWG
Final recommended size10 AWG (governed by ampacity)

Therefore, for a 24.0A load over 50.0 ft at 240V, you need approximately 10 AWG copper wire on a 25A breaker.

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

30A is standard — this is also the small-conductor OCPD cap for 10 AWG copper under NEC 240.4(D).
Common uses include window AC units, some electric water heaters, and certain dryer configurations — always confirm against the specific equipment's nameplate rating rather than assuming a fixed use case.