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HomeConvertersWire GaugeCompare

10 AWG vs 8 AWG — Wire Gauge Comparison

Compare 10 AWG (35A @ 75°C, 10,380 CM) vs 8 AWG (50A @ 75°C, 16,510 CM). Includes copper/aluminum assumptions, ampacity, voltage-drop planning, and NEC/local-code safety notes.

Advanced options — derating, breaker & conduit
10 AWGcopper
Ampacity OKVD 2.07%VD GOVERNS

Long run (50 ft) requires upsizing from 12 AWG to 10 AWG for voltage drop.

Ampacity30Aat 60°C
Voltage drop2.07%2.49V
At load117.5Vreceiving end
Circular mils10,3805.26 mm²
Min for ampacity
12 AWG
6,530 CM
Min for ≤3% VD ← governs
10 AWG
10,380 CM
Breaker size20ANEC 240.6(A)
Wire cost est.~$72100 ft THHN
Conduit size3/4" EMT3 conductors
Ground (EGC)12 AWG CuNEC 250.122
Power loss48W~$58.87/yr
⚠Long run (50 ft) governs — upsized from 12 AWG to 10 AWG for ≤3% VD.

Copper vs Aluminum (for 20A at 50 ft on 120V)

Copper
12 AWG
VD: 3.3% · 3.31 mm²
Aluminum
10 AWG
VD: 3.4% · 5.26 mm²
10 AWG
35A @ 75°C  ·  5.26 mm²  ·  10,380 CM
Used for 30A circuits — dryers, water heaters, small AC units.
8 AWG
50A @ 75°C  ·  8.37 mm²  ·  16,510 CM
40–50A circuits — EV chargers (Level 2), large AC units, cooking ranges (smaller).

10 AWG vs 8 AWG: Which is right for your project?

10 AWG has 35A ampacity and 10,380 circular mils. 8 AWG has 50A ampacity and 16,510 circular mils.
For 20A at 50 ft on 120V: 10 AWG drops 2.07% vs 8 AWG drops 1.3%.

Head-to-head comparison

Source: NEC 2023 Table 310.16. Voltage drop formula: VD = (2 × K × I × L) / CM.

Specification10 AWG8 AWG
AWG10 AWG8 AWG
Diameter0.1019" / 2.588mm0.1285" / 3.264mm
Area5.26 mm²8.37 mm²
Circular mils10,38016,510
Cu ampacity (60°C)30A40A
Cu ampacity (75°C)35A50A
Al ampacity (75°C)30A40A
VD at 20A / 50ft2.49V (2.07%)1.56V (1.3%)
Resistance (Cu/kft)1.24Ω0.778Ω
Common insulationsNM-B, THHN, THWN, UF-BTHHN, THWN, USE-2, XHHW

Ampacity comparison

Visual Analysis1 series4 points

Interactive bar view for 1 series and 4 sampled points, built for quick reading and clear comparison.

Trend
Upward
Min
30
Max
50
Insight
Ampacity comparison shows an upward pattern, with a visible peak around 8 AWG 75°C at 50.
3035404550101088
X-axis: Wire gauge + temp ratingY-axis: Ampacity (A)

Ampacity comparison

Which gauge wins for this setup?

10 AWG vs 8 AWG must be decided by ampacity, voltage drop, material, terminals, and raceway constraints together.

Voltage drop across common loads

Voltage-drop comparison at 50 ft on 120V. Ampacity still must be checked separately for each load.

Load10 AWG VD8 AWG VDPlanning signal
15A1.55%0.98%Both pass
20A2.07%1.3%Both pass
30A3.11%1.95%8 AWG preferred
40A4.14%2.6%8 AWG preferred
50A5.18%3.26%Upsize/check distance
60A6.21%3.91%Upsize/check distance

Practical impact of choosing the larger gauge

Upsizing can reduce voltage drop and heat, but may raise cost, raceway size, and termination constraints.

Decision factor10 AWG8 AWGDifference
Circular mils10,38016,5106,130 CM
Area5.26 mm28.37 mm23.11 mm2
Ampacity35A50A15A
Resistance1.24 ohm/kft0.778 ohm/kftLower resistance means lower voltage drop.
VD at 20A/50ft2.07%1.3%0.77 percentage points

Copper and aluminum ampacity comparison

Temperature-rating and material rules can change the final legal choice even when AWG size looks similar.

Material / rating10 AWG8 AWGSelection note
Copper 60C30A40ACommon small-branch-circuit terminal basis.
Copper 75C35A50AOften relevant for larger listed terminals.
Copper 90C40A55AUsually used for adjustment/correction, not final terminal ampacity.
Aluminum 75C30A40AOnly where aluminum conductors and terminations are listed.
Resistance1.24 ohm/kft0.778 ohm/kftLower resistance reduces voltage drop.

How to choose between these gauges

10 AWG is the smaller conductor when its circular-mil area is lower; 8 AWG is larger when its circular-mil area is higher. The larger conductor generally lowers voltage drop and heat but costs more and may require larger raceway.
For the modeled 20A, 50 ft, 120V example, compare both ampacity and voltage drop rather than choosing by ampacity alone.
Use the smaller listed gauge only when it passes ampacity, voltage drop, termination temperature, and installation-condition checks for the real circuit.

Safety notes for replacing wire sizes

Do not downsize an existing circuit from a comparison table. Breaker size, conductor material, insulation, raceway fill, equipment label, and local code decide the legal minimum.
A larger wire can still be wrong if terminals are not rated for the conductor material or size, or if the equipment nameplate requires a specific branch-circuit treatment.

Wire gauge comparison FAQ

Is 8 AWG always better than 10 AWG?
The larger conductor usually lowers resistance and voltage drop, but cost, raceway fill, and terminal compatibility still matter.
Which gauge has less voltage drop?
8 AWG has the lower modeled voltage drop for 20A at 50 ft.
Can one gauge replace the other?
Only when the replacement satisfies breaker, ampacity, voltage drop, terminal, equipment-label, insulation, and local-code requirements.
Which temperature rating should be used?
This comparison uses 75C for the modeled ampacity. Real terminals and equipment labels decide whether 60C, 75C, or 90C values apply.
Wire Gauge Guides
  • 12 AWG 20A at 50 ft
  • 10 AWG 30A at 75 ft
  • 15A 120V Wire Size
  • 20A 120V Wire Size
  • 30A 240V Wire Size
  • 50A 240V Wire Size
  • 12 AWG vs 10 AWG
  • 10 AWG vs 8 AWG
  • Kitchen Outlet (20A)
  • EV Charger Level 2 (50A)
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