PHYSICS

JAMB 2002 - Question 32

Physics 2002 JAMB Past Questions - Question 32: An electric cell with nominal voltage E has a resistance of 3fi connected across it. If the voltage falls to 0.6E, the internal resistance of the cell is

Choose the correct answers from the options given.
An electric cell with nominal voltage E has a resistance of 3fi connected across it. If the voltage falls to 0.6E, the internal resistance of the cell is
A:
B:
C:
D:
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Correct Answer

C

Explanation

IR=0.61(R+r) ;1*3=0.61(3+r) r=2ohmsWhen an electric cell with a nominal voltage (E) is connected to a resistor (R), the voltage across the resistor (V) can be calculated using Ohm's Law, which is given by the equation:

V = E - I * r

Where:
V = Voltage across the resistor (0.6E in this case)
E = Nominal voltage of the cell
I = Current passing through the circuit
r = Internal resistance of the cell

You mentioned that a resistor with a resistance of 3Ω is connected across the cell. So, we have:

R = 3Ω

Now, we need to find the current (I) passing through the circuit. You can use Ohm's Law for this as well:

I = V / R

Substituting the values we have:

I = (0.6E) / 3Ω

Now, we can substitute this value for I into the first equation:

0.6E = E - I * r

0.6E = E - ((0.6E) / 3Ω) * r

Now, we can solve for r:

0.6E = E - (0.2E) * r

0.6E = E - 0.2E * r

Now, let's isolate 'r' by bringing the terms involving 'r' to one side of the equation:

0.6E - E = -0.2E * r

-0.4E = -0.2E * r

Now, divide both sides by -0.2E to solve for 'r':

r = (0.4E) / (0.2E)

r = 2Ω

So, the internal resistance of the cell is 2Ω.