Current through a 1kΩ resistor at 9V

Worked answer for 9V applied across a 1kΩ resistor, using Ohm's law (I = V/R) and power (P = V²/R).

Current 9.0 mA 9V ÷ 1kΩ · dissipates 81.0 mW

Voltage (V)	9 V
Resistance (R)	1kΩ
Current I = V / R	9.0 mA
Power P = V² / R	81.0 mW

Driving 9V through 1kΩ gives 9.0 mA of current (I = V/R) and the resistor must dissipate 81.0 mW of heat (P = V²/R). Pick a resistor power rating comfortably above that figure.

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More 9V cases

9V across 100Ω → 90.0 mA
9V across 220Ω → 40.9 mA
9V across 470Ω → 19.1 mA
9V across 2.2kΩ → 4.1 mA
9V across 4.7kΩ → 1.9 mA
9V across 10kΩ → 0.9 mA

Disclaimer: This is a reference estimate using ideal Ohm's law. Real components have tolerance and self-heating; verify against your part's datasheet and power rating before building.