Question:
a wire of 15 ohm resistance is gradually stretched to twice its length.It is then cut into two equal parts.these parts are then connected in parallel across a 3.0V battery.Find the current drawn from he battery.
a wire of 15 ohm resistance is gradually stretched to twice its length.It is then cut into two equal parts.these parts are then connected in parallel across a 3.0V battery.Find the current drawn from he battery.
Updated On: Aug 8, 2023
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Solution and Explanation
R'=n2R=\((2)^2\times15=60\Omega\)
Resistance of each half part=\(\frac{60}{2}=30\Omega\)
When both parts are connected in parallel, the final resistance=\(\frac{30}{2}=15\Omega\)
Current drawn from the battery, I=\(\frac{V}{R}\)=\(\frac{0.3}{15}\)=0.2A
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