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AITS & Test SerieshardMCQ SINGLE

Question

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Answer: A

💡 Solution & Explanation

x x 2 2 0 0 1 mgcos kx dx mgsin dx mv 2        3 kx mgcos mgsin x K.E. 3      For K.E. to be maximum 2 dK.E. mgcos kx mgsin 0 dx     SECTION – B

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