If `n` drops of a liquid, form a single drop, thenA. some energy will be released in the processB. some energy will be released in the processC. the energy released or absorbed will be `E(n-n^((2)/(3)))`D. the enrgy released or absorbed will be `nE(2^((2)/(3))-1)`

If `n` drops of a liquid, form a single drop, thenA. some energy will

1.	If `n` drops of a liquid, form a single drop, thenA. some energy will be released in the processB. some energy will be released in the processC. the energy released or absorbed will be `E(n-n^((2)/(3)))`D. the enrgy released or absorbed will be `nE(2^((2)/(3))-1)`
Answer» Correct Answer - A::C Let S `=` surface energy per unit drop `r=` radius of each small drop `R` radius of a single drop `nxx(4)/(3)pir^(3)=(4)/(3)piR^(3)` or `R=rn^((1)/(3))` Initial surface energy `E_(i)=nxx4pir^(2)xxS=nE` Final surface energy `E_(f)=4piR^(2)S=4piR^(2)n^((2)/(3))S=n^((2)/(3))E` Therefore, energy released `E_(i)-E_(f)=(n-n^((2)/(3)))`

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If `n` drops of a liquid, form a single drop, thenA. some energy will be released in the processB. some energy will be released in the processC. the energy released or absorbed will be `E(n-n^((2)/(3)))`D. the enrgy released or absorbed will be `nE(2^((2)/(3))-1)`

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