In above question, the work done in the two wire isA. 0.5 J, 0.03 JB. 0.25 J, 0 JC. 0.03 J, 0.25 JD. 0J, 0j

In above question, the work done in the two wire isA. 0.5 J, 0.03 JB.

1.	In above question, the work done in the two wire isA. 0.5 J, 0.03 JB. 0.25 J, 0 JC. 0.03 J, 0.25 JD. 0J, 0j
Answer» Correct Answer - a As work done, `W = (F^(2)I)/(2((pi D^(2))/(4))y)` Where, Y,I and F are constants. `implies W prop (1)/(D^(2))` or `(W_(1))/(W_(2)) = (D_(2)^(2))/(D_(1)^(2)) = 16` Now, `W_(1) = (1)/(2) xx 10^(3 xx 1 xx 10^(-3) = 0.5 J` `:. W_(2) = (1)/(2) xx 10^(3) xx (10^(-3))/(16) = (1)/(32) = 0.03125` `(w_(1))/(W_(2)) = (0.5)/(0.3125) = 16`

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In above question, the work done in the two wire isA. 0.5 J, 0.03 JB. 0.25 J, 0 JC. 0.03 J, 0.25 JD. 0J, 0j

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