You bring the factors. These bring the method.
Four calculators. Every value that lives in a code table is typed in by you, off the page you read it from, and the label tells you which table that is. What runs here is the arithmetic and the order it happens in, which is the half that actually gets failed.
The North Carolina examinations are open book on the 2020 National Electrical Code, and the state enforces the 2020 edition with its own amendments. This page holds no table values, but the sections it names are the 2026 numbers, so check them against your own 2020 copy.
Chapter 9 is still the tables in both editions, so the tables this page uses carry the same numbers in a 2023 book, and Annex C is still Annex C. Ampacity is still Article 310 and overcurrent is still Article 240 in both editions, so Table 310.16, the 310.15 correction and adjustment tables, 110.14(C) and 240.4(D) carry the same numbers in a 2023 book. The transformer tool is the one that moved: 450.3 in the 2023 edition is 450.5 in the 2026 book. What we hold on the moves compares the 2026 edition with the 2023 one, and the record does not reach a 2020 book, so it cannot tell you what any of these numbers is in the edition North Carolina tests on. Look each one up in your own copy.
A calculator with the tables built into it is a copy of the tables with a form on the front. That is the one behavior worth avoiding, and avoiding it costs you nothing here: you have the book open in the exam room anyway, and looking a factor up is the skill being tested.
So the fields marked you read this one want a number out of your own book, and each one names the table it is on. Everything after that is arithmetic, plus the rules about which figure caps which, which is where the points really go.
ampacityConductor deratingCorrection for ambient temperature, adjustment for conductor count, and the termination limit that outranks both.
Two factors multiply against the table ampacity, in either order, because multiplication does not care. Then a third rule caps the answer, and that one is not a multiplication at all. Candidates lose this question by stopping at the multiplication.
Start in the ninety degree column if the conductor is a ninety degree conductor. Correction and adjustment are applied from there, not from the terminal rating.
Table 310.16 is a thirty degree table, so it pairs with the thirty degree correction table named above. The forty degree correction table pairs with the free-air ampacity tables instead. Reading the right factor off the wrong table is a quiet way to be wrong, because the arithmetic still works.
Count current-carrying conductors, not conductors. A grounded conductor that carries only the unbalanced current of the other conductors is not counted, and an equipment grounding conductor is not counted at all. Enter one if adjustment does not apply.
Optional, and it is the step people skip. Read the same size again in the column that matches the lowest rated terminal in the circuit. NEC 110.14(C) caps the final answer at that figure.
Optional. Supply it and the working shows whether the corrected ampacity covers the load.
The method
- Start at the ampacity for the insulation rating of the conductor itself, not at the terminal rating.
- Multiply by the ambient correction factor.
- Multiply by the conductor-count adjustment factor.
- That product is the corrected and adjusted ampacity.
- Now read the same conductor again in the termination temperature column. Under NEC 110.14(C) the lower of the two figures is the one you are allowed to use.
article 314Box fillConductors, yokes, clamps, support fittings, grounds and terminal blocks, added the way NEC 314.16(B) adds them.
Six categories get added together. Two of them are counted in a way that surprises people every single time: a yoke is a double allowance, and the first four equipment grounding conductors are one allowance between them.
Add any plaster ring, extension ring or domed cover that is marked with its own volume. A securely installed barrier takes volume away rather than adding it.
A conductor that comes in from outside and terminates or splices in the box counts once. One that passes through unbroken counts once. A loop long enough to be twice the free-conductor length counts twice. A pigtail made up entirely inside the box counts not at all.
Each yoke is a DOUBLE allowance, sized by the largest conductor connected to a device on that yoke. A device wider than a single device box gets the double allowance for every gang it occupies, so count the gangs here rather than the devices.
One allowance in total no matter how many clamps, and it is sized by the largest conductor in the box rather than by the clamp. A connector whose clamping mechanism sits outside the box gets nothing.
Per type, not per fitting. Two studs are one allowance. A stud and a hickey are two.
This is the figure the clamp allowance and each support-fitting allowance are both sized from.
Up to four of them share a single allowance. Every one after that adds a quarter of an allowance. Counting each ground as a full allowance overstates the fill badly and is the second most common error here.
The method
- Conductor fill: each counted conductor at the allowance for its own size.
- Clamp fill: one allowance in total where any internal clamp is present, sized by the largest conductor in the box.
- Support fitting fill: one allowance for each TYPE of fitting, sized by the largest conductor in the box.
- Device fill: two allowances for every yoke or strap, sized by the largest conductor connected to a device on that yoke.
- Equipment grounding conductor fill: one allowance for the first four, then a quarter allowance for each one after that.
- Terminal block fill: one allowance for each assembly, sized by the largest conductor landed on it.
- Add the six together and compare against the free volume of the box.
chapter 9Voltage dropOne-way length, load current, conductor resistance, and the multiplier that changes with the number of phases.
The arithmetic is small. What people get wrong is the multiplier and the length. Use the one-way length and let the multiplier account for the return path, or use the round-trip length and no multiplier, but never both.
Single-phase carries a multiplier of two, because the current goes out and comes back. Three-phase carries the square root of three, about 1.732, because the return is shared between the other two conductors, phase shifted, rather than piling up in one of them.
Read the row for your conductor size, in the right metal. Copper and aluminum are different columns and swapping them is worth a lot of volts.
Optional. Leave it blank for a resistance-only answer, which is what most exam questions want. Fill it in with a power factor and the working switches to effective impedance instead.
Only used when a reactance is supplied. At unity power factor the reactance contributes nothing and the two methods agree.
The method
- Pick the multiplier: two for single-phase, the square root of three for three-phase.
- Turn ohms per thousand feet into ohms for this run by multiplying by the one-way length and dividing by a thousand.
- Where a reactance and a power factor are both given, use effective impedance instead of plain resistance: resistance times power factor, plus reactance times the sine of the angle.
- Divide by the number of parallel sets, because parallel conductors share the current.
- Multiply the multiplier by the current by that impedance. The answer is in volts.
- Divide by the system voltage for a percentage.
theoryOhm's law and the power wheelGive it any two of volts, amperes, ohms and watts. It returns the other two and names the two formulas it used.
Twelve formulas in a wheel are four relationships wearing different hats. Fill in any two boxes and leave the other two empty.
The method
- Volts equal amperes times ohms.
- Watts equal volts times amperes.
- Watts equal amperes squared times ohms.
- Watts equal volts squared divided by ohms.
- Every other face of the wheel is one of those four rearranged.
Want the answer without typing the table in?
These eight hold the values inside their code and show you the row they used, so a working electrician gets a number in ten seconds. The exam trains better on this page, where you type the values in yourself.
The 2023 to 2026 section crosswalk maps every section that moved, both directions, $29 once.
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