Answer:
0.635 Ω
Step-by-step explanation:
Using
E-E' = IR.................... Equation 1
Where E = total Emf of the of the batteries, E' = back emf of the motor, I = current of the motor, R = combined resistance of the battery and the motor.
Make R the subject of the equation
R = E-E'/I.............. Equation 2
Given: E = 6.3 V, E' = 2.1 V, I = 3.1 A.
Substitute into equation 2
R = (6.3-2.1)/3.1
R = 4.2/3.1
R = 1.355 Ω
Since the motor and the batteries are connected in series,
R = R'+r'....................... Equation 3
Where R' = Resistance of the motor, r' = resistance of the batteries.
make R' the subject of the equation
R' = R-r'...................... Equation 4
Given: R = 1.355 Ω, r' = 0.18×4 (four batteries) = 0.72 Ω
Substitute into equation 4
R' = 1.355-0.72
R' = 0.635 Ω
Hence the resistance of the motor = 0.635 Ω