6 AWG vs 10 AWG
| 6 AWG | 10 AWG | |
|---|---|---|
| Diameter | 4.115 mm | 2.588 mm |
| Cross-section | 13.3 mm² | 5.26 mm² |
| Resistance (copper) | 1.3 Ω/km | 3.28 Ω/km |
| NEC 60 °C ampacity | 55 A | 30 A |
Which is thicker
6 AWG has 2.53× the copper of 10 AWG in cross-section, and carries current with 60% less resistance per metre. AWG numbers run backwards because the scale counts drawing passes: more passes, thinner wire, higher number.
Voltage lost over a run at 30 A
| One-way run | 6 AWG | 10 AWG |
|---|---|---|
| 10 m (33 ft) | 0.78 V (0.6%) | 1.97 V (1.6%) |
| 20 m (66 ft) | 1.56 V (1.3%) | 3.93 V (3.3%) over 3% |
| 30 m (98 ft) | 2.33 V (1.9%) | 5.9 V (4.9%) over 3% |
| 50 m (164 ft) | 3.89 V (3.2%) over 3% | 9.83 V (8.2%) over 3% |
Figures are for a 120 V supply and count both conductors, because the current returns along the neutral. 10 AWG stays inside 3% out to about 18 m; 6 AWG reaches 46 m. That gap is the usual reason to upsize a wire the ampacity table already allows.
What each is rated to carry
On the NEC 310.16 60 °C column, 6 AWG copper is rated 55 A and 10 AWG is rated 30 A. Those figures set the breaker, and they are not the whole story: insulation type, ambient temperature, how many conductors share a conduit and your local code all move them. Circuit design is an electrician's call, not a table's.
Frequently asked questions
What is the difference between 6 AWG and 10 AWG?
6 AWG is the thicker wire: 4.115 mm across against 2.588 mm, with 2.53× the cross-section. Thicker copper means lower resistance — 1.3 Ω/km against 3.28 Ω/km — so less voltage is lost along a run.
Can I use 6 AWG instead of 10 AWG?
Going thicker is electrically safe — 6 AWG has less resistance and runs cooler than 10 AWG at the same current. The practical limits are cost, stiffness and whether it fits the terminals. Going the other way, to thinner wire, is the direction that needs the ampacity table and an electrician.
How far can 10 AWG run at 30 A?
About 18 m (59 ft) before the drop reaches 3% of a 120 V supply. 6 AWG reaches 46 m (151 ft) at the same current. The 3% figure is the informational note in NEC 210.19, not a hard rule, but it is the number most designs work to.
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