A drop of liquid of radius $R = 10^{- 2} m$ having surface tension $S = \frac{0.1}{4 π} N m^{- 1}$ divides itself into $K$ identical drops. In this process the total change in the surface energy $Δ U = 10^{- 3} J$ . If $K = 10^{α}$ then the value of $α$ is

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Solution

As the volume of the drop is constant,
Volume of big drop= $k \times$ volume of small drop
let, the radious of small drop is $r$ .
So,
$\frac{4}{3} π R^{3} = K \times \frac{4}{3} π r^{3}$
where, $R = r (k)^{\frac{1}{3}}$ ...(1)
Now, change in surface energy ( $Δ U) =$ surface tension $\times$ change in surface area
$Δ U = 4 π T [R^{2} - r^{2}]$
$= 4 π T R^{2} [k^{1 / 3} - 1]$
$10^{- 3} = 4 π \times \frac{0.1}{4 π} \times 10^{- 4} [k^{1 / 3} - 1]$
$k^{1 / 3} = 101 \approx 100$
$k = 10^{6}$
$α = 6$

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A drop of liquid of radius $R = 10^{- 2} m$ having surface tension $S = \frac{0.1}{4 π} N m^{- 1}$ divides itself into $K$ identical drops. In this process the total change in the surface energy $Δ U = 10^{- 3} J$ . If $K = 10^{α}$ then the value of $α$ is