The bob of simple pendulum having density $\frac{4000}{3} {kg/m}^{3}$ executes $SHM$ in water with a period $^{'} t^{'} s$ . If the period of oscillation of bob in air is $10 s$ , find the value of $^{'} t^{'}$ .
(Neglect frictional force of water, take density of water as $1000 {kg/m}^{3}$ )

10

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20

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30

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40

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Solution

The correct option is B $20$
Given,
Period of oscillation of bob in air $(T) = 10 s$
Density of bob $(ρ) = \frac{4000}{3} {kg/m}^{3}$
Density of water $(σ) = 1000 {kg/m}^{3}$
We know that,
Time period of oscillation of bob in water
$(t) = \frac{T}{\sqrt{1 - \frac{σ}{ρ}}}$
$t = \frac{10}{\sqrt{1 - \frac{3000}{4000}}}$
$t = 20 s$

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Q. The bob of simple pendulum having density

\frac{4000}{3} {kg/m}^{3}

executes

SHM

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^{'} t^{'} s

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(Neglect frictional force of water, take density of water as

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Q. The bob of simple pendulum having density

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executes

SHM

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