From grimoire
Guides selection of home EV charging equipment (Level 1 vs Level 2), electrical panel requirements, and NEC-compliant installation planning.
How this skill is triggered — by the user, by Claude, or both
Slash command
/grimoire:design-ev-charging-setupThe summary Claude sees in its skill listing — used to decide when to auto-load this skill
Design a safe, code-compliant home EV charging installation by selecting the appropriate charging level, specifying electrical requirements, and preparing for professional installation.
Design a safe, code-compliant home EV charging installation by selecting the appropriate charging level, specifying electrical requirements, and preparing for professional installation.
Adopted by: DOE "EV Everywhere" national program, NEC Article 625 (adopted by all 50 states), SAE International (J1772 connector standard used by all non-Tesla EVs), NFPA electrical safety standards, utility EV programs nationwide
Impact: 80% of EV charging occurs at home (DOE AFDC data); proper Level 2 installation adds $1,000–$2,500 in home value (Zillow EV data, 2022); incorrect installation causes fire risk — 34% of EV charging incidents involve improper extension cords or undersized wiring; utility time-of-use (TOU) optimization saves $400–$900/year on charging costs
Why best: NEC Article 625 and SAE J1772 together define the physical, electrical, and safety requirements for EV charging; designing within these standards ensures safety, maximum charging speed, and insurance/warranty compliance
Sources: SAE J1772 "Electric Vehicle and Plug-in Hybrid Electric Vehicle Conductive Charge Coupler" standard; DOE EV Everywhere "Charging at Home" guide; NEC 2023 Article 625 "Electric Vehicle Charging System"
Determine daily charging need — Calculate: average daily miles driven ÷ EV's efficiency (miles/kWh) = daily kWh needed. Add 20% buffer for range variation. This determines minimum charging speed required.
Evaluate Level 1 vs. Level 2 vs. DC Fast — Level 1 (120V, 12A standard outlet): adds 3–5 miles/hour — sufficient if daily driving <40 miles and car charges overnight. Level 2 (240V, 24–80A, EVSE required): adds 15–30 miles/hour — standard for most EV owners. DC Fast Charge (Level 3): commercial only, not home-installable.
Select EVSE power level — Calculate required EVSE output: daily kWh ÷ available charging hours (typically 8–12 hours overnight) = minimum kW. Standard recommendation: 32A (7.7 kW) for 150–200 miles/day capable; 48A (11.5 kW) for large trucks/SUVs or high daily mileage. Do not over-spec beyond your vehicle's onboard charger limit — charging at 48A into a vehicle with a 7.2 kW onboard charger wastes panel capacity.
Check the electrical panel — A licensed electrician must assess: main panel amperage (100A minimum for Level 2; 200A recommended), available breaker slots, and existing load. A 50A dedicated circuit handles up to 40A continuous EVSE per NEC 125% rule. If the panel is at capacity, options include: load management systems, panel upgrade ($1,500–$3,500), or subpanel addition.
Determine circuit requirements — NEC Article 625.17 requires a dedicated branch circuit for EVSE. Wire sizing per NEC 625: 40A EVSE requires 50A circuit (8 AWG copper minimum); 32A EVSE requires 40A circuit (10 AWG copper minimum); 48A EVSE requires 60A circuit (6 AWG copper minimum). All wiring must meet local electrical code.
Choose EVSE location — Preferred: inside garage on a wall within 18 inches of the vehicle's charge port side when parked; outdoor: rated NEMA 3R minimum (weather resistant), NEMA 4X for harsh climates. Cord length: 18–25 ft allows flexibility in parking position. Avoid: extension cords (NEC prohibited for EVSE), overhead cords (trip hazard).
Select EVSE features — Required by NEC 625: ground fault protection (GFCI), automatic de-energization if cord is damaged. Optional but recommended: smart/WiFi connectivity (enables scheduled charging for TOU rate optimization), energy monitoring, load management integration, over-the-air updates. Top-rated EVSEs: ChargePoint Home Flex, Emporia EV, Grizzl-E Classic.
Plan for load management if needed — Smart EVSE with utility enrollment can reduce charging rate during peak grid demand; some utilities offer $200–$500 rebates for smart EVSE enrollment. Load management allows shared circuit with dryer or HVAC without panel upgrade in some installations.
Arrange permits and professional installation — NEC and most local codes require a licensed electrician; pulling permits is legally required in all 50 states for new circuits; unpermitted work voids home insurance and can cause issues on home sale. Budget: $400–$1,200 labor (simple garage install); $800–$2,500 if panel work needed. Many utilities and EV manufacturers have contractor networks.
Apply for incentives — Federal: up to 30% tax credit (IRS Form 8911) for EVSE equipment and installation (maximum $1,000 residential). State/utility: check your state's database at dsireusa.org and your utility's website for additional rebates ($100–$500 common). Manufacturer: some EVs include free Level 2 charging equipment or installation credit.
npx claudepluginhub jeffreytse/grimoire --plugin grimoire2plugins reuse this skill
First indexed Jun 5, 2026
Queries grid electricity forecasts and submits load events via Apple's EnergyKit framework. Helps build smart home apps, EV charger controls, and energy management dashboards.
Calculates real-world EV range by applying factors for temperature, speed, terrain, payload, and HVAC. Useful for trip planning or diagnosing range shortfalls.