AC Unit Amperage Calculator: Size Your Circuit Correctly (Free Tool)
You are installing a new air conditioner. You need to know how many amps it draws. The nameplate says “RLA 15” and “LRA 70.” What do these mean? How do you size the wire and breaker?
The amperage of an AC unit determines everything about the electrical installation. Wire size, breaker size, and disconnect size all depend on the current draw . Getting it wrong can cause nuisance trips, overheating, or even a fire.
Today, I give you a free AC Unit Amperage Calculator. This tool estimates the running amps and starting amps of your air conditioner based on the cooling capacity, voltage, and SEER rating.
What is AC Unit Amperage? (Simple Explanation)
Amperage (or current) is the flow of electricity through the circuit. For an air conditioner, there are three important current values :
- RLA (Rated Load Amps): The current the compressor draws while running under normal conditions. This is the number used for wire sizing.
- LRA (Locked Rotor Amps): The current drawn when the compressor starts. This is much higher than RLA and is used for breaker sizing.
- FLA (Full Load Amps): The current drawn by the fan motor.
The simple relationship:
Amps = Watts ÷ Volts
This is the basic formula. But for air conditioners, you also need to account for efficiency (EER) and power factor (PF).
Why This AC Unit Amperage Calculator Matters
Here is why you need to calculate AC amperage correctly.
**Reason 1: Wire sizing **
Wire gauge must be large enough to carry the RLA without overheating. The National Electrical Code (NEC) requires wire rated for 125% of the RLA .
**Reason 2: Breaker sizing **
The breaker must handle the starting current (LRA) without tripping, but still protect the circuit. This is MOCP (Maximum Overcurrent Protection) .
Reason 3: Avoid nuisance trips
If the breaker is too small, the unit will trip on startup. If it is too large, it will not protect the circuit .
LIVE AC Unit Amperage Calculator
Enter your AC unit details. The calculator shows the estimated RLA and LRA instantly.
AC Unit Amperage Calculator
Find the right breaker size and wire gauge for your air conditioner. Enter your unit’s details and get safe, accurate numbers in seconds.
1 ton = 12,000 BTU/hr cooling capacity
Higher rating = more efficient = lower amps
Typical compressor PF: 0.85–0.95
Longer runs may need thicker wire
Enter your AC details above
Calculating amperage and wire size…
🔲 Breaker Size Options
Always Verify With a Licensed Electrician
This calculator gives you a strong estimate based on NEC standard formulas. But local codes vary, and your AC unit’s actual nameplate data is the real source of truth. Always check the nameplate on your unit and confirm with a licensed electrician before installing or upgrading any circuit.
📊 Calculation Breakdown
AC Unit Amperage — What You Need to Know
Getting the amperage right matters. Too small a breaker trips constantly. Too small a wire is a fire risk. Here’s how to get it right, in plain language.
What Is RLA?
RLA stands for Rated Load Amps. It’s how much current your AC compressor draws during normal running operation. You’ll find this on the nameplate sticker on the outdoor unit. It’s the single most important number for sizing your circuit.
What Is LRA?
LRA stands for Locked Rotor Amps. This is the surge of current when the compressor first starts. It’s much higher than RLA — often 4–6 times higher. This only lasts a fraction of a second but your wiring still needs to handle it safely.
The 125% Rule
The National Electrical Code (NEC) requires your breaker and wire to be sized at 125% of the RLA. This isn’t optional — it’s a safety standard. It accounts for the extra heat generated during continuous running, which AC units do for hours at a time.
MCA vs MOCP
MCA (Minimum Circuit Ampacity) tells you the smallest wire size allowed. MOCP (Maximum Overcurrent Protection) tells you the largest breaker allowed. Your breaker must be between these two numbers — never below MCA, never above MOCP.
Why Wire Gauge Matters
Wire that’s too thin for the amperage overheats. This is a genuine fire hazard. Longer wire runs also lose voltage over distance — this is called voltage drop. For runs over 100 feet, you often need to size up one gauge even if the amperage alone wouldn’t require it.
Always Check the Nameplate
Calculators like this one give excellent estimates. But the real nameplate data on your specific unit is always the authoritative source. Manufacturing tolerances mean two “3-ton” units from different brands can have slightly different RLA numbers.
📐 The Formulas We Use
RLA (Amps) = Watts ÷ (Volts × Power Factor) — for single phase
MCA = RLA × 1.25 (NEC 125% Rule)
MOCP = RLA × 1.25, rounded up to next standard breaker size (max 2.25× RLA)
For three-phase: RLA = Watts ÷ (Volts × 1.732 × Power Factor)
Watts is estimated from tonnage using typical compressor efficiency: roughly 1,200W per ton at SEER 13, adjusted for your SEER/EER rating.
This is the standard method used in HVAC load calculations and matches NEC Article 440.
AC Unit Amperage Reference Chart
Typical values for standard residential central AC units at 230V single phase.
| AC Size | Typical RLA | Typical LRA | Min Breaker | Min Wire (Cu) |
|---|---|---|---|---|
| 1.5 Ton (18,000 BTU) | 8–9A | 45–50A | 15A | 14 AWG |
| 2 Ton (24,000 BTU) | 10–12A | 55–62A | 20A | 12 AWG |
| 2.5 Ton (30,000 BTU) | 12–14A | 62–70A | 20A | 12 AWG |
| 3 Ton (36,000 BTU) | 14–17A | 70–85A | 25A | 10 AWG |
| 3.5 Ton (42,000 BTU) | 16–19A | 80–95A | 30A | 10 AWG |
| 4 Ton (48,000 BTU) | 18–22A | 90–110A | 30A | 10 AWG |
| 5 Ton (60,000 BTU) | 23–28A | 110–140A | 40A | 8 AWG |
Frequently Asked Questions
❄️ AC Unit Amperage Calculator
Estimate running and starting amps for your air conditioner
❄️ Cooling Capacity (BTU)
⚡ Voltage
120V (Window units, small AC) 230V (Central AC, split systems) 208V (Commercial) 460V (Three-phase commercial)
📊 SEER Rating
10 SEER (Older unit) 13 SEER (Standard) 16 SEER (Good) 18 SEER (Better) 20 SEER (Premium) 25 SEER (High efficiency)
⚡ RLA (Rated Load Amps – Running):—
⚡ LRA (Locked Rotor Amps – Starting):—
0%
💡 Wire sizing is based on RLA. Breaker sizing is based on LRA.
📐 Formula: Watts = BTU ÷ EER, Amps = Watts ÷ Volts. EER ≈ SEER × 0.85.
How to Use This AC Amperage Calculator
Follow these 3 simple steps.
Step 1: Enter the cooling capacity in BTUs (found on the unit’s nameplate)
Step 2: Select the voltage (120V, 208V, 230V, or 460V)
Step 3: Select the SEER rating (efficiency)
The calculator shows:
- RLA (running amps) – for wire sizing
- LRA (starting amps) – for breaker sizing
Real Examples: Different Scenarios
Example 1: 12,000 BTU Window Unit
- Capacity: 12,000 BTU
- Voltage: 120V
- SEER: 12
Calculation:
EER ≈ 10.2 → Watts = 12,000 ÷ 10.2 = 1,176 W
RLA = 1,176 ÷ 120 = 9.8 A
LRA = 9.8 × 6 = 58.8 A
Result: 10A running, 60A starting. Use 14 AWG wire with a 15A breaker.
Example 2: 3-Ton Central AC (36,000 BTU)
- Capacity: 36,000 BTU
- Voltage: 230V
- SEER: 16
Calculation:
EER ≈ 13.6 → Watts = 36,000 ÷ 13.6 = 2,647 W
RLA = 2,647 ÷ 230 = 11.5 A
LRA = 11.5 × 6 = 69 A
Result: 11.5A running, 69A starting. Use 10-12 AWG wire with a 30-35A breaker.
Example 3: 5-Ton Commercial AC (60,000 BTU)
- Capacity: 60,000 BTU
- Voltage: 460V (Three-phase)
- SEER: 14
Calculation:
EER ≈ 11.9 → Watts = 60,000 ÷ 11.9 = 5,042 W
RLA = 5,042 ÷ 460 = 10.96 A
LRA = 10.96 × 6 = 65.8 A
Result: 11A running, 66A starting. Use 12 AWG wire with a 30A breaker for three-phase.
Understanding the Numbers
RLA (Rated Load Amps):
This is the current the compressor draws under normal operating conditions. It is used for wire sizing. The NEC requires wire rated for 125% of the RLA .
LRA (Locked Rotor Amps):
This is the current drawn when the compressor starts. It is significantly higher than RLA. It is used for breaker sizing and selecting the disconnect switch .
Power Factor (PF):
Air conditioner compressors have a power factor of 0.8 to 0.9. This means the apparent power (VA) is higher than the real power (Watts). For single-phase AC, the formula is: Watts = Volts × Amps × PF .
Frequently Asked Questions (FAQs)
1. What is the difference between RLA and LRA?
RLA is the running current. LRA is the starting current. LRA is 5-7 times higher than RLA.
2. How do I find the RLA of my AC unit?
Check the nameplate on the compressor or outdoor unit. It will list RLA (or FLA for the fan).
3. What size breaker do I need for a 3-ton AC?
A 3-ton AC (36,000 BTU) at 230V with 16 SEER draws about 11.5A running. A 30A breaker is typically used for these units.
4. What wire size do I need for a 4-ton AC?
A 4-ton AC at 230V with 16 SEER draws about 15.5A running. Use 10 AWG wire (30A breaker) .
5. Why does the starting current matter?
Starting current matters because it determines the breaker size. The breaker must handle the high starting current without tripping .
6. Can I use the same breaker for the compressor and fan?
Yes, the nameplate will show the combined MCA (Minimum Circuit Ampacity) and MOCP (Maximum Overcurrent Protection) .
7. Does a higher SEER rating reduce amperage?
Yes. Higher SEER means more efficient cooling, so it uses less power and lower amperage for the same cooling capacity.
8. What is MCA and MOCP?
MCA (Minimum Circuit Ampacity) is the minimum wire size rating. MOCP (Maximum Overcurrent Protection) is the maximum breaker size .
9. How do I size a generator for my AC?
Use the LRA to size the generator. The generator must handle the starting surge, not just the running load.
10. Is this calculator accurate for all AC units?
This calculator provides estimates. Always check the nameplate on your actual unit for exact ratings.
Final Thoughts
Correct amperage calculation is essential for safe AC installation.
My AC Unit Amperage Calculator gives you:
- Estimated RLA for wire sizing
- Estimated LRA for breaker sizing
- NEC-compliant recommendations
Bookmark this page. Use it before installing or servicing any AC unit.
The next time you need to size a circuit for an air conditioner, you will have the right numbers.
Disclaimer: This is an educational tool based on standard electrical formulas and NEC guidelines. Always refer to the nameplate on your specific unit and consult a licensed electrician for installations.
External Links (Authority Backlinks):
- Wikipedia – Air conditioning{:target=”_blank” rel=”noopener noreferrer”}
- Wikipedia – SEER{:target=”_blank” rel=”noopener noreferrer”}
- Wikipedia – Electrical wiring{:target=”_blank” rel=”noopener noreferrer”}
- Wikipedia – NEC{:target=”_blank” rel=”noopener noreferrer”}
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