mA to Amps Conversion: Calculator, Formula & Chart
Convert milliamps to amps (and back) instantly — with NEC fuse-sizing context for solar, battery, and control circuits.
Milliamps show up everywhere in modern electrical work: sensor loops, CT secondaries, LED drivers, BMS standby draw, GFCI trip thresholds. Amps are what breakers, fuses, and wire are sized in. Converting between them is a one-step division — but applying the result correctly is where real design decisions happen. Use the calculator below, then keep reading for the formula, reference charts, and the NEC rules that turn a conversion into a code-compliant circuit.
⚡ mA ⇄ Amps Converter
Type a value and get the conversion instantly — plus the standard fuse size NEC 240.6 would point you to.
Formula: Amps = Milliamps ÷ 1,000 · Milliamps = Amps × 1,000
Instant conversion as you type. Fuse suggestion follows NEC 240.6 standard ratings with the 125% continuous-load rule (NEC 210.20).
The conversion is a pure metric prefix shift. The ampere (A) is the SI base unit of electric current; the milliampere (mA) is one-thousandth of an ampere:
Amps = Milliamps ÷ 1,000 · Milliamps = Amps × 1,000
Two mental shortcuts make this instant in the field. First, dividing by 1,000 moves the decimal point three places left: 4,700 mA becomes 4.7 A. Second, any milliamp value under 1,000 is a fraction of an amp — 250 mA is 0.25 A, a quarter of an amp. If your converted number comes out larger than the milliamp number, you multiplied instead of dividing; flip it.
This is the reverse of the power-focused conversion in our amps-to-watts guide, and it pairs naturally with kWh-to-amps when you are moving between energy billing units and circuit current. Neither of those requires voltage; this one doesn't either. mA-to-amps is a same-quantity conversion — current to current — so no voltage, resistance, or power factor ever enters the math.
The most common conversions, pre-computed. Bookmark this table — these are the values that show up on labels and datasheets daily.
| Milliamps (mA) | Amps (A) | Typical source |
|---|---|---|
| 1 mA | 0.001 A | Sensor quiescent draw |
| 10 mA | 0.01 A | Small relay coil, indicator LED |
| 30 mA | 0.03 A | RCD/GFCI personnel-protection trip class |
| 100 mA | 0.1 A | Charge controller standby |
| 250 mA | 0.25 A | Shunt-trip coil, small fan |
| 500 mA | 0.5 A | USB charger, LED driver |
| 750 mA | 0.75 A | BMS board, monitoring gateway |
| 1,000 mA | 1 A | One full amp |
| 2,500 mA | 2.5 A | Small DC pump |
| 4,200 mA | 4.2 A | Microinverter AC output (per unit, ~1 kW class at 240 V) |
| 10,000 mA | 10 A | PV string current (modern 450 W+ module) |
| 20,000 mA | 20 A | Residential branch circuit limit |
Table 1 — Quick mA→A reference. Divide by 1,000 to reproduce any row.
1. GFCI and personnel protection thresholds
The most consequential milliamp number in the trade is 4–6 mA — the trip window UL 943 sets for Class A ground-fault circuit interrupters. At 5 mA (0.005 A), a GFCI must trip fast enough to prevent ventricular fibrillation. Equipment-protection GFCIs trip at 20 mA, and the 30 mA RCD class common in international installations sits between the two. Every one of these safety thresholds is specified in milliamps while the circuit it protects is rated in amps — the conversion is the bridge between the protection spec and the conductor design.
2. Solar monitoring, CTs, and control circuits
Current transformers output standardized secondary signals — 5 A, 1 A, or 333 mV at full scale — and many revenue-grade meters and data loggers express burden and loop current in milliamps. The 4–20 mA analog loop standard used for irradiance sensors, temperature probes, and BMS communication lives entirely in milliamp territory. When commissioning a microinverter system or a monitoring gateway, you will convert mA loop readings to amps to validate that the sensor chain matches the array's actual string current.
3. Battery and BMS parasitic draw
A lithium battery's BMS typically draws 20–200 mA in standby. Over a month, a 100 mA (0.1 A) parasitic draw on a 12 V system consumes about 72 Ah — enough to noticeably drain a 100 Ah battery sitting in storage. This is why our battery maintenance guide recommends disconnecting or maintaining charge on stored banks, and why the battery runtime calculator asks about always-on loads.
4. LED drivers and low-voltage lighting
Constant-current LED drivers are rated in milliamps: 350 mA, 500 mA, 700 mA, 1,050 mA are standard drive currents. Selecting the driver, then the supply, then the branch protection means walking the same number through three unit conventions — mA at the LED, watts at the driver input, amps at the breaker.
Example 1 — Fuse for a monitoring gateway
- Gateway label: 750 mA at 12 V DC.
- Convert: 750 ÷ 1,000 = 0.75 A.
- Continuous-load sizing (NEC 210.20, 125%): 0.75 × 1.25 = 0.94 A.
- Next standard rating (NEC 240.6): 1 A fuse. A 3 A fuse would also protect the wiring but gives the electronics less protection.
Example 2 — PV string current from a module datasheet
- Datasheet short-circuit current (Isc): 10,850 mA.
- Convert: 10,850 ÷ 1,000 = 10.85 A.
- NEC 690.8 max circuit current: 10.85 × 1.25 = 13.56 A; conductor sized at 156% of Isc = 16.93 A.
- Result: 12 AWG PV wire (30 A ampacity at 75 °C before derating) passes with margin — see our solar wire guide for the full selection logic.
Example 3 — LED driver drive current
- Spec calls for a 1,050 mA constant-current driver.
- Convert: 1,050 ÷ 1,000 = 1.05 A output current.
- Driver at 36 V forward voltage delivers ~37.8 W; input draw at 120 V is roughly 0.35 A — well inside a 15 A branch circuit shared with other loads.
The National Electrical Code rarely speaks in milliamps — its tables are denominated in amperes — but several articles anchor to milliamp-scale phenomena:
- NEC 210.8 / UL 943 (GFCI): personnel protection trips at 4–6 mA. Equipment ground-fault protection (NEC 210.13, 215.10, 240.13) acts at 20 mA or higher.
- NEC 240.6 (Standard ratings): after converting a milliamp load to amps, overcurrent devices come in fixed steps — 15, 20, 25, 30 A and up for branch circuits, with fractional ratings available as fuses. The calculator above applies the 125% rule and rounds to the next standard size automatically.
- NEC 725 (Class 2/3 control circuits): the milliamp domain of thermostats, sensors, and relay coils, with power-limited sources often rated in VA and currents measured in mA.
- NEC 690.8 (PV circuit sizing): module Isc printed as 10,850 mA becomes 10.85 A before the 125% irradiance factor and the second 125% continuous factor are applied.
Once your load is in amps, the next decision is conductor ampacity. Our NEC 310.16 ampacity chart and the NEC wire sizing guide take the converted amp value and return a gauge; THHN copper and PV wire cover most solar and branch-circuit pulls.
| Load (mA) | Amps | 125% design | Next standard OCPD (240.6) | Smallest typical copper conductor |
|---|---|---|---|---|
| 500 | 0.5 A | 0.63 A | 1 A fuse | 22–18 AWG (control) |
| 1,000 | 1 A | 1.25 A | 1.5–2 A fuse | 18 AWG |
| 3,000 | 3 A | 3.75 A | 4–5 A fuse | 18 AWG |
| 8,000 | 8 A | 10 A | 10 A | 18–16 AWG |
| 12,000 | 12 A | 15 A | 15 A | 14 AWG |
| 16,000 | 16 A | 20 A | 20 A | 12 AWG |
| 24,000 | 24 A | 30 A | 30 A | 10 AWG |
Table 2 — Milliamp load → amps → NEC 125% design current → standard overcurrent device → minimum conductor (copper, 75 °C, before derating).
⚠ The four errors we see most on mA↔A conversions
1. Multiplying instead of dividing. 500 mA is 0.5 A, not 500,000 A. If the amp number is bigger than the milliamp number, the direction is wrong — amps are always the smaller figure.
2. Reading the meter on the wrong jack. Measuring a 400 mA control circuit on the 10 A jack of a multimeter shows 0.4 A with poor resolution and can mask a real problem. Move the lead to the mA jack and re-range.
3. Ignoring inrush. A 500 mA LED driver can pull several amps for microseconds at startup. Size fuses as time-delay where nuisance trips appear, and don't diagnose an inrush spike as a steady-state overdraw.
4. Forgetting that protection thresholds are in mA while conductors are sized in A. A 30 mA ground-fault trip says nothing about whether 14 AWG or 12 AWG is required — convert the load to amps and size the wire from the ampacity table, not from the protection spec.
| Unit | Symbol | In amps | Where you see it |
|---|---|---|---|
| Microamp | µA | 0.000001 A | CMOS standby, insulation leakage tests |
| Milliamp | mA | 0.001 A | Sensors, LED drivers, GFCI thresholds, BMS draw |
| Amp | A | 1 A | Circuits, breakers, wire sizing, inverter output |
| Kiloamp | kA | 1,000 A | Fault current, breaker interrupt ratings (AIC) |
Table 3 — Current units span nine orders of magnitude. kA appears on breaker nameplates as interrupting capacity, not load.
| Device | Rated current (mA) | Amps | Notes |
|---|---|---|---|
| Smoke/CO alarm standby | 50–100 | 0.05–0.1 | 9 V battery backup domain |
| Thermostat + zone board | 200–800 | 0.2–0.8 | Class 2, 24 VAC control |
| USB-C PD charger (small) | 500–3,000 | 0.5–3 | At 5–20 V DC output |
| PV rapid-shutdown transmitter | ~100 | 0.1 | NEC 690.12 equipment |
| Charge controller idle | 80–250 | 0.08–0.25 | See our controller sizing guide |
| Microinverter (per unit AC out) | 4,000–4,800 | 4.0–4.8 | ~1–1.2 kW class at 240 V |
| String inverter aux supply | 150–400 | 0.15–0.4 | Fans, display, comms |
Table 4 — Real devices, both unit conventions, one conversion rule.
Is 1000 mA the same as 1 amp?
Yes. 1,000 milliamps equals exactly 1 ampere. The prefix "milli" means one-thousandth, so you divide the milliamp figure by 1,000 to get amps: 1,000 mA ÷ 1,000 = 1 A. The same rule scales anywhere — 2,500 mA is 2.5 A, and 250 mA is 0.25 A.
How many amps is 500 mA?
500 mA is 0.5 amps (half an amp). Divide 500 by 1,000. This is a common rating on small USB chargers, LED drivers, and sensor power supplies, and it is why a 1 A fuse is the usual protective pairing for these devices.
Why do solar and battery specs mix mA and A?
Manufacturers use milliamps for small parasitic and control currents (BMS standby draw, monitoring boards, shunt-trip coils) and amps for power currents (string current, battery discharge, inverter output). A single datasheet for a hybrid inverter can legitimately show a 200 mA auxiliary draw next to a 50 A battery charge limit, so converting between the two is a daily task when comparing equipment.
Can I use a clamp meter to measure milliamps?
Most standard clamp meters resolve poorly below about 100 mA. For accurate milliamp readings, use a meter with a dedicated mA range, a low-current clamp accessory, or measure in series with a quality multimeter set to the mA jack. Never measure mA on the 10 A jack and assume the value is precise at the low end.
What fuse size do I need for a milliamp load?
Convert the load to amps first, then apply the NEC 125% continuous-load rule and round up to the next standard rating in NEC 240.6. A 500 mA (0.5 A) continuous load needs 0.625 A of capacity, so a 1 A fuse is the standard choice. For small DC control circuits, fast-acting glass or ceramic fuses in the 1–5 A range are typical.
Does the mA-to-amps conversion change for AC vs DC?
No. The unit conversion is identical: 1,000 mA = 1 A in both AC and DC systems. What changes is how you apply the result — AC circuits add power factor and RMS considerations, while DC solar circuits deal with continuous duty and temperature derating. The arithmetic of the conversion itself never changes.
- Amps to Watts: Convert Current to Power
- Kilowatt-Hours to Amps Guide
- Wire Ampacity Chart (NEC 310.16)
- NEC Wire Sizing Guide
- Solar Wire & Cable Guide: PV Wire vs USE-2 vs THHN
- Solar Disconnect & Overcurrent Protection (NEC 690)
- Surge Protection for Solar Systems
- Solar Charge Controller Sizing Guide
- How to Size Circuit Breakers: NEC 125% Rule
- Battery Backup Runtime Calculator
- Shop Cerro THHN Wire
- Shop PV Wire
- Shop Circuit Breakers
- Shop Microinverters
Need breakers, wire, or protective devices sized for your converted load? Get a quote from Portlandia Electric Supply — we stock circuit breakers, THHN wire, and full solar kits with same-day shipping on most items.

































