United States, Canada, Mexico
NEC (NFPA 70) — the North American standard for electrical installations.
Shandong Huali Electromechanical Co., Ltd. manufactures diesel generator sets from 8 to 4,000 kVA and exports to more than 20 countries, which puts us on both sides of this divide. We size cable to NEC for our North American customers and to IEC for everyone else, and this guide is built from that same cross‑market experience. For the actual sizing, use our wire size calculator, which handles both AWG and mm².
We manufacture diesel generator sets from 8 to 4,000 kVA and export to 20+ countries — sizing cable to NEC for North America and IEC for the rest of the world.
NEC and IEC are the two dominant frameworks for sizing electrical conductors, and they serve the same job with different rulebooks.
The National Electrical Code, published by NFPA as standard 70, governs electrical installations across North America. Wire and cable sizing lives in Article 310, where Table 310.16 lists ampacity by conductor size and insulation temperature. Conductors are measured in American Wire Gauge (AWG), which runs backward: a smaller number means a thicker wire. Above 4/0 AWG, sizes are given in thousands of circular mils, kcmil.
The International Electrotechnical Commission governs through IEC 60364, the standard for low-voltage electrical installations. Part 5-52 sets current-carrying capacity, and conductors are measured in square millimetres (mm²) of cross-sectional area. Many countries adopt IEC 60364 directly or as a national derivative: BS 7671 in the UK, AS/NZS 3008 in Australia and New Zealand, and GB standards in China.
Underneath the different units and tables, both systems rest on the same thermal physics. A conductor heats up under load, and its rating is the current that holds it below the insulation's temperature limit in a given installation. The Neher-McGrath equations and IEC 60287 calculations that produce the tables are the same engineering either way. The divergence comes from how each code packages those results.
Both systems rest on the same thermal physics. A conductor heats up under load, and its rating is the current that holds it below the insulation's temperature limit in a given installation. The Neher-McGrath equations and IEC 60287 calculations that produce the tables are the same engineering either way. The divergence comes from how each code packages those results — AWG vs mm², 75°C vs 70°C columns, and different installation correction factors.
Uses AWG (backward gauge) and kcmil for larger sizes. Article 310 Table 310.16 is the primary ampacity reference.
Uses mm² cross-sectional area. IEC 60364 Part 5-52 sets the current-carrying capacity tables for most countries outside North America.
Both systems are built on Neher-McGrath and IEC 60287 thermal equations. The standards diverge in units, temperature columns, and correction factors.
A "14 AWG" conductor and a "2.08 mm²" conductor are the same size — but the ampacity values differ by code. Always specify which standard you are sizing to.
The first practical difference is the unit of measurement, and the table below is the crosswalk between the two.
| AWG | Cross-Section | Typical 60°C Ampacity |
|---|---|---|
| 14 AWG | 2.08 mm² | 15 A |
| 12 AWG | 3.31 mm² | 20 A |
| 10 AWG | 5.26 mm² | 30 A |
| 8 AWG | 8.37 mm² | 40 A |
| 6 AWG | 13.30 mm² | 55 A |
| 4 AWG | 21.15 mm² | 70 A |
| 2 AWG | 33.62 mm² | 95 A |
| 1/0 AWG | 53.49 mm² | 125 A |
| 4/0 AWG | 107.2 mm² | 195 A |
You do not substitute a 6 AWG cable for a 13.3 mm² cable directly, because the metric world has no 13.3 mm² conductor. The IEC standard series runs 1.5, 2.5, 4, 6, 10, 16, 25, 35, 50, 70, 95, 120, 150, 185, 240, and 300 mm² and up.
A 6 AWG cable therefore maps to the nearest standard size, which is 16 mm², not to a notional 13.3 mm² value.
The rule is: convert the size, then select the nearest standard conductor in the target system, then confirm ampacity against that system's own table. The crosswalk gets you close; the ampacity table closes the gap.
AWG converts to a theoretical mm² value. Select the nearest standard IEC size — 6 AWG ≈ 13.3 mm² → use 16 mm².
1.5, 2.5, 4, 6, 10, 16, 25, 35, 50, 70, 95, 120, 150, 185, 240, 300 mm² — these are the actual conductor sizes available in metric markets.
A theoretical 13.3 mm² conductor does not exist. Always confirm ampacity against the target system's own table.
The crosswalk gets you close; the ampacity table closes the gap. Always verify with the standard you are sizing to.
The table below summarizes where NEC and IEC wire sizing diverge.
| Aspect | NEC (NFPA 70) | IEC (IEC 60364-5-52) |
|---|---|---|
| Conductor unit | AWG / kcmil | mm² |
| Ampacity source | Table 310.16 | Installation-method tables (B.52.x) |
| Temperature basis | 60 / 75 / 90°C columns | 70°C PVC / 90°C XLPE |
| Continuous load | 125% rule (NEC 210.19) | No continuous-load rule |
| Grouping derating | Fixed factors (1–3 = 1.00, 4–6 = 0.80) | Annex B tables by method |
| Voltage drop | 3% branch / 5% total (recommended) | ~3% / 4–5% (clause 525) |
| Cable tray fill | More permissive | More conservative |
| Next-size-up OCPD | Allowed | Not allowed |
The same load, sized under both standards, shows where the systems agree and where they part.
Take a 100 amp, three‑phase, 50 metre run of PVC‑insulated copper in conduit at 30°C ambient. Under IEC 60364-5-52, Reference Method B selects a 35 mm² conductor rated 110 A at 70°C. Under NEC Table 310.16, the design lands on 2 AWG, about 33.6 mm², rated 115 A at 75°C. The two answers are physically almost identical.
The convergence makes sense: a simple indoor conduit run at standard temperature is where the two standards are closest. They diverge in the harder cases. Add a buried run and IEC brings detailed correction tables for burial depth, ground temperature, and soil resistivity, while NEC points to a separate underground table. Load several cables into a tray and NEC allows more conductors per tray than IEC will accept. Run a continuous load and NEC adds the 125% factor while IEC does not.
The lesson is not that one standard is right. It is that the standards agree on the fundamentals and differ on the margins, and the margins are where real installations live.
The decision between NEC and IEC is rarely a choice; it is set by where the equipment will be installed.
NEC (NFPA 70) — the North American standard for electrical installations.
BS 7671 — the UK national standard, derived from IEC 60364.
IEC 60364 or national derivatives (e.g., VDE in Germany, NF C 15-100 in France).
IEC 60364 or national derivatives, with local variations in voltage and frequency.
AS/NZS 3008 — the IEC‑derived standard for cable sizing in the region.
GB standards — IEC‑aligned national standards for electrical installations.
For a manufacturer, this is where the standards question becomes a business question. The same generator set shipped to two customers needs two feeder‑cable specifications, one in AWG for North America and one in mm² for most of the rest of the world. The conductor that is correct under NEC is not automatically the conductor you specify under IEC, even though the underlying physics is identical.
Of all the conductors in a power system, the generator feeder is the one where NEC vs IEC wire sizing matters most. It carries continuous load, often a large motor‑starting surge, and it runs between the generator and the switchgear where a sizing error is expensive and hard to fix.
A generator feeder is a continuous load under NEC, so the 125% rule applies. It is usually a long run, so voltage drop governs. The 125% factor and voltage drop together often push the conductor size up significantly.
Under IEC, the same feeder is sized by installation method with no continuous‑load factor. This is why the same generator can carry a different cable size depending on the destination market. Get this right and the generator delivers its full rating; get it wrong and the cable runs hot or the voltage sags under load.
Once the conductor is specified, the next question is whether the generator itself is sized for the load it feeds. The feeder size and generator capacity must be coordinated — and both depend on the same load data and the same destination standard.
Shandong Huali Electromechanical Co., Ltd. manufactures diesel generator sets, dust-suppression equipment, and industrial automation systems, with over 25 years of experience and exports to more than 20 countries. We size power equipment to both NEC and IEC standards every day, and we publish free electrical reference tools to help engineers and buyers specify power systems correctly.
A: NEC, used in North America, sizes conductors in AWG and lists ampacity by insulation temperature in Table 310.16, with a 125% continuous-load rule. IEC, used globally, sizes conductors in mm² and derives ampacity from the installation method in IEC 60364-5-52, with no continuous-load rule. The two reach similar results in simple cases and diverge in grouped, buried, and continuous-load installations.
A: AWG is the American Wire Gauge, a scale where a smaller number means a thicker conductor. mm² is the metric cross-sectional area used by the IEC. A 10 AWG conductor is about 5.26 mm², and a 1/0 AWG is about 53.5 mm². The two systems use different standard size series, so conversion is approximate.
A: Use a crosswalk table. Common conversions are 14 AWG to 2.08 mm², 10 AWG to 5.26 mm², 6 AWG to 13.3 mm², and 1/0 AWG to 53.5 mm². After converting, select the nearest standard metric size and confirm ampacity against the IEC table for the installation method.
A: It depends on where the equipment will be installed. North America uses NEC, while the UK, Europe, Asia, Africa, the Middle East, and Australia use IEC or an IEC-derived national standard. The market sets the standard, not preference.
A: NEC 210.19 and 210.20 require conductors and overcurrent devices on continuous loads, those running three hours or more, to be sized at 125% of the load. IEC 60364 treats ampacity as a cable property for prolonged service and applies the 125% concept to protective devices instead, not to the conductor itself.
A: IEC 60364 is the international standard for low-voltage electrical installations. Part 5-52 sets current-carrying capacity for conductors, keyed to installation method, ambient temperature, and grouping. Many national standards, including BS 7671 and AS/NZS 3008, are based on it.