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Job Playbook

Level 2 EV charger installs

The fastest-growing residential call in the trade, and the one most likely to turn into a service upgrade halfway through the quote. Here is how to size it, where it goes wrong, and what to check before you commit to a price.

Most EVSE installs are a straightforward 240 V branch circuit. The two things that turn a two-hour job into a bad week are the same every time: the panel does not have the capacity, or the conductor was sized off the charger’s rating instead of the continuous-load rule.

Get those two right at the quote and the rest is conduit and mounting height.

Field math

EVSE circuit sizing

An EV charger is a continuous load, so conductors and overcurrent protection are sized at 125% of the charger’s continuous current rating. This works it out both ways — in conduit, and in NM cable, which is where people get caught.

Design current—125% continuous
Breaker—Standard size
Min conductor—Ungrounded
Approx. power—At 240 V
Sizing uses the 75°C column for conductors in conduit and the 60°C column for NM-B cable, which is the limit NEC 334.80 places on NM. Terminations matter too — NEC 110.14(C) holds you to the lowest-rated component in the circuit. This is a planning aid for sizing conversations, not a substitute for a full calculation against your adopted code edition.
The real question

Will the panel take it?

This is the conversation that decides whether you are quoting a circuit or quoting a service upgrade. Have it on the phone, not in the driveway.

  • Service rating and calculated load. Run the dwelling load calculation with the charger added as a continuous load. A 100 A service with electric heat and a range usually will not absorb a 48 A charger without help.
  • Physical space in the panel. Two adjacent full-size spaces for a 240 V breaker. Tandems do not solve this — you need a real two-pole.
  • Busbar rating versus main rating. Check both. They are not always the same number.
  • Listed breaker for that panel. The panel’s label lists what is permitted in it. A breaker that physically fits is not automatically the listed one.
  • Whether a load-management device solves it. Many chargers support power sharing or a load-management system that sheds the charger when the rest of the house draws. In a capacity-limited house this is often cheaper for the homeowner than a service upgrade — and it is a legitimate engineered answer, not a workaround.
  • Whether the charger can simply be dialed down. Most Level 2 units let you set a lower output at commissioning. A 32 A setting overnight still fills a commuter car by morning. Ask what the customer actually drives before you sell them the largest unit.
If the answer is noDo not quote a charger circuit you already know the service cannot carry. Quote the service upgrade as its own scope, priced honestly, and let the homeowner decide. The 200A service upgrade playbook is the runbook for that half of the job.
Common sizes

What the common combinations look like

Typical residential Level 2 configurations, sized on the continuous-load rule. Verify every one of these against your adopted edition and the equipment listing.

Charger Breaker Cu in conduit Cu NM-B Approx. power
16 A 20 A 12 AWG 12 AWG ~3.8 kW
24 A 30 A 10 AWG 10 AWG ~5.8 kW
32 A 40 A 8 AWG 8 AWG ~7.7 kW
40 A 50 A 8 AWG 6 AWG ~9.6 kW
48 A 60 A 6 AWG 4 AWG ~11.5 kW
80 A 100 A 3 AWG not practical ~19.2 kW
The NM-B column is the one that bitesNEC 334.80 restricts NM cable to the 60°C ampacity column. That is why a 48 A charger on a 60 A breaker needs 4 AWG NM rather than the 6 AWG you would use for the same circuit in conduit. Plenty of otherwise-good installs get written up here because someone priced 6/3 NM off the conduit number.
On site

The install itself

Hardwire or receptacle

A receptacle install is faster and lets the homeowner take the unit with them, but it introduces its own protection requirements and a connection point that gets plugged and unplugged. Hardwiring is generally the more durable answer for a permanently mounted charger, and is required for the higher-output units. The listing dictates the permitted connection method — read the instructions.

GFCI protection

Requirements depend on the connection method, the location, and your adopted edition. Many EVSE units include integral ground-fault protection of their own, and stacking that behind a GFCI breaker is a well-known source of nuisance tripping. Check the installation instructions before you pick the breaker.

Mounting height and cable reach

Set the height so the cable does not lie on the floor and the connector reaches the charge port on the car the customer actually owns. Walk the parking position with them. A charger mounted on the wrong side of a two-car garage is a callback.

Outdoor and wet locations

Enclosure rating listed for the location, with conduit and fittings to match. Ambient temperature also affects ampacity — a garage attic run in Phoenix is not the same circuit as the same run in Duluth.

Disconnecting means

Some EVSE installations require a disconnecting means within sight. Article 625 covers EV power transfer equipment — check the rating and location thresholds in your edition rather than assuming.

Commissioning

Set the output to match the branch circuit, not the charger’s maximum. Confirm it on the unit’s display or app, and note the setting on the panel directory and on your invoice. That note is what protects you if someone later dials it up.

Before energizingVerify torque at every termination, confirm the equipment grounding conductor is landed and continuous, and check the circuit is not sharing a neutral with anything. Then test under load — plug in a car and watch it pull for a few minutes rather than calling it done at first handshake.
Accuracy

Code notes to verify

Cited here because we are confident in them: Article 625 covers electric vehicle power transfer systems; NEC 334.80 limits NM cable to the 60°C ampacity column; NEC 110.14(C) requires you to respect the lowest termination temperature rating in the circuit; and sizing conductors and overcurrent protection at 125% of a continuous load is long-standing in Articles 210 and 215.

Described deliberately without a section number, because they are edition-dependent or listing-dependent:

  • GFCI requirements for EVSE — these have changed across recent cycles and differ between a receptacle-fed and a hardwired unit.
  • Disconnecting-means thresholds in Article 625 — verify the rating and location triggers in your edition.
  • Load-management and energy-management provisions — permitted approaches have evolved; check what your AHJ accepts.
  • Receptacle configuration and protection rules for plug-connected chargers.
Always check your adopted editionJurisdictions adopt the NEC on their own schedule and amend it locally. EV charging is one of the fastest-moving areas in the code, so the gap between the newest edition and what your county enforces is often wide. Confirm before you rely on any of this on a job, and follow the manufacturer’s installation instructions where they are more restrictive.

Quote it like a business

A scope that names the charger, the output setting, the wiring method and the exclusions — plus the change order for when the panel says no.

Open the paperwork kitHow to price it

Electrician Portal · NEC Quick Reference · Service Upgrade Playbook · Calculators

General information for licensed trade professionals. Not engineering or code-compliance advice. Always verify against your locally adopted code edition, the equipment listing, and the manufacturer’s instructions.