Answer:
The resistance of the flashlight bulb is 3.0E2 ohm
Explanation:
According to ohms law, the voltage across a circuit is expressed as V = IR where:
V is supply voltage
I is the supply current
R is the resistance.
From the ohms law formula: [tex]R = \frac{V}{I}[/tex]
Given V = 4.50V and I = 15mA
15mA = [tex]\frac{15}{1000}A\\[/tex]
[tex]15mA = 0.015A[/tex]
Substituting this value into the formula to get the resistance:
[tex]R = \frac{4.50}{0.015}\\R = 300ohm\\R = 3.0*10^{2} ohm[/tex]
The resistance of the flashlight bulb is 3.0E2 ohm
