An alternating current supply is connected to an electric lamp which lights with the same brightness as it does with direct current source emf 6v. The peak potential difference of the a.c supply is

A.

4.6v

B.

6.0v

C.

8.5v

D.

12.0v

View answer & explanation

Correct answer is C

V_o = V\(\_{rms}\) x \(\sqrt{2}\)

V_o = 6 x 1.414

V_o = 8.484

= 8.5v

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