Electrical Conversions + Field Math Reference
Why this matters
Field electricians do quick math constantly - what's the amp draw of this 1500W heater? Will this 20A circuit support 3 motors? What's voltage drop on 100 ft run? The math is simple but the formulas are forgotten without practice. This is the field card every electrical-trade tech should keep handy.
Ohm's Law (the foundation)
E = I × R (Voltage = Current × Resistance). E = volts; I = amps; R = ohms (Ω). Rearrangements: I = E / R; R = E / I. Wheel memory aid: E above, I and R below - cover any one to see the formula.
Watts (Power) Law
P = E × I (Power = Voltage × Current). Rearrangements: I = P / E; E = P / I. Combined with Ohm's: P = I² × R; P = E² / R. Common conversions: 1 kW = 1,000 W; 1 MW = 1,000,000 W; 1 kWh = 1,000 Wh (energy); 1 HP = 746 W. Field tip: 1 HP motor ≈ 1 kW input (efficiency 80 - 85%).
Amp-watt-volt quick lookup (120V)
100W → 0.83A; 200W → 1.67A; 500W → 4.17A; 750W → 6.25A; 1000W → 8.33A; 1200W → 10A; 1500W → 12.5A; 1800W → 15A; 2400W → 20A. 80% rule: continuous load (3+ hrs) limited to 80% capacity - 15A circuit → 12A continuous; 20A circuit → 16A continuous.
Power at 240V
Common 240V circuits: 1500W → 6.25A, 2000W → 8.33A, 3000W → 12.5A, 4000W → 16.67A, 4800W → 20A, 6000W → 25A, 7200W → 30A, 9600W → 40A, 12000W → 50A. Why 240V more efficient: same power, half the current, half the heat loss in wire.
Common appliance power draws (120V)
LED bulb 9 - 15W (0.1A); refrigerator 150 - 700W (1 - 6A); toaster 800 - 1500W (7 - 13A); microwave 600 - 1500W (5 - 13A); coffee maker 600 - 1200W (5 - 10A); vacuum 800 - 1400W (7 - 12A); hair dryer 800 - 1800W (7 - 15A); space heater 750 - 1500W (6 - 13A); window AC 5K BTU 450W (4A); window AC 12K BTU 1200W (10A); computer + monitor 200 - 400W (2 - 3A).
240V appliances
Water heater (40-gal) 4500W (19A); electric dryer 5000W (21A); electric range peak 9600W (40A); central AC 3-ton 3500W (15A); heat pump 3-ton 3500W (15A); electric furnace 15 kW 15000W (63A); EV charger Level 2 7200W (30A); tankless water heater 28000W (117A).
Voltage drop calculation
NEC suggests max 3% drop on branch circuits, 5% total feeder + branch. Formula (single phase): VD = 2 × K × I × L / CM (K = 12.9 copper at 75°C, 16.7 aluminum). Simplified 3% drop on 120V: #14 → 15A 50 ft; #12 → 15A 80 ft / 20A 60 ft; #10 → 15A 130 ft / 20A 100 ft / 30A 65 ft; #8 → 15A 200 ft / 20A 155 ft / 30A 105 ft; #6 → 15A 320 ft / 20A 245 ft / 30A 165 ft. Solution: upsize wire for long runs.
Conductor ampacity + service entrance
NEC Table 310.16 (75°C copper): #14 → 20A (limited 15A breaker), #12 → 25A (20A breaker), #10 → 35A (30A breaker), #8 → 50A, #6 → 65A, #4 → 85A, #2 → 115A, #1 → 130A, 1/0 → 150A, 2/0 → 175A, 3/0 → 200A, 4/0 → 230A, 250 kcmil → 255A, 350 kcmil → 310A, 500 kcmil → 380A. Derating for ambient temp + multiple conductors per NEC 310.15.
Service entrance (copper / aluminum): 100A → 1/0 / 3/0; 125A → 2/0 / 4/0; 150A → 3/0 / 250 kcmil; 200A → 4/0 / 350 kcmil; 320A → 350 kcmil / 600 kcmil.
Motor + 3-phase + transformer + battery
Motor amperage: single-phase A = HP × 7 - 10 (efficiency dependent); three-phase A = (746 × HP) / (1.732 × V × η × PF). FLA (Full Load Amps): nameplate value used for sizing. SF (Service Factor): can run at SF × FLA continuously. LRA (Locked Rotor Amps): startup, 6 - 8 × FLA. Common 120V single-phase: 1/4 HP 5A, 1/2 HP 9A, 3/4 HP 12A, 1 HP 16A, 1.5 HP 20A, 2 HP 24A, 3 HP 34A.
3-phase: P = √3 × V × I × PF = 1.732 × V × I × PF. V_line = 1.732 × V_phase (Y-wired). Common voltages: 120/208V (low-V commercial), 277/480V (commercial), 480V delta (industrial). Advantages: more power per wire, smoother torque, smaller motors.
Transformer: VA = V × A; common sizes 7.5 kVA (small commercial), 25 kVA (utility pole), 50/75/100 kVA (commercial), 200/500+ kVA (industrial).
Battery: capacity = Ah × V = Wh. AA 1.5V × 2,500 mAh = 3.75 Wh. Auto 12V lead-acid 50 Ah = 600 Wh. Lithium 12V 100 Ah = 1,200 Wh. Tesla Powerwall 13.5 kWh. Run time = Wh battery / W load = hours.
Common conversions
1 BTU/hr ≈ 0.293 watts (heating)
1 ton cooling = 12,000 BTU/hr = 3,517 watts
3-ton AC system: 36,000 BTU/hr cooling capacity; uses ~3.5 kW input.
1 horsepower = 745.7 watts (or 2,545 BTU/hr)
Power factor (PF)
PF = real power / apparent power. Resistive (heaters) PF = 1.0; motors PF = 0.7 - 0.95; LED lighting PF = 0.9 - 1.0. Low PF causes industrial utility penalty; capacitor banks correct it.
Field calculation examples
How many 100W LEDs on 15A 120V at 80%? 15 × 120 = 1800W; 80% = 1440W; / 100 = 14 LEDs. Wire size for 50 ft 12A continuous? 12A continuous = 80% of 15A circuit, #14 OK ampacity + within voltage-drop limit. Breaker for 4 kW pool heater 240V? 4000 / 240 = 16.67A; continuous / 0.8 = 20.8A → 25A or 30A breaker. 1500W heater on 1200 Wh battery? 1200 / 1500 = 0.8 hr = 48 minutes.
Shortcuts: Watts = Volts × Amps (most common); 120V × 12A = 1440W (15A at 80%); 240V × 30A = 7200W (EV charger); HP × 746 = Watts; kW × 1.34 = HP; 1 ton AC = 12,000 BTU/hr ≈ 1 kW input.
Common electrical math mistakes
Forgetting 80% rule (continuous loads overload). Ignoring voltage drop (long runs need wire upsize). Confusing single-phase + three-phase formulas. Forgetting motor starting current LRA (breaker trips on startup). Wrong ampacity for cable type (NM derated vs THHN). Skipping derating (too many wires in conduit, ambient temp).
The single most-useful electrical math shortcut is the WATTS = VOLTS × AMPS for everyday sizing. Customer says "this dryer is rated 5000W on 240V" - that's 5000 / 240 = 21 amps; needs 30A circuit. "Customer has 1500W space heater on 120V" - 1500 / 120 = 12.5 amps; needs 15A circuit (and likely won't run anything else). This single formula handles 80% of field electrical math. Master it cold.
References
- NEC Table 310.16 (ampacity)
- NEC Chapter 9 (formulas, tables)
- Mike Holt + Trade School electrical math curriculum
- Manuall internal: Conductor Ampacity Reference, Service Entrance + Meter Base