According to problem, n small drop of radius r coalesce to form a big liquid drop of radius R. Since, the volume remain same. i.e.
4
3
πR3=n×
4
3
πr3 ∴ R=r×n
1
3
.......(i) During the formation of big drop, surface area decreases and hence, the energy released. Now, change in surface area, ∆A=n×4πr2−4πR2 Therefore, energy released, ∆E=T×∆A=T×[n×4πr2−4πR2] =4πTR2[