In the given figure, the block is displaced slightly and released. Then, the time period of oscillation is:

T = 2 π \sqrt{\frac{2 m}{K}}

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T = 2 π \sqrt{\frac{m}{K}}

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T = 2 π \sqrt{\frac{m}{2 K}}

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T = 2 π \sqrt{\frac{m}{3 K}}

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Solution

The correct option is C $T = 2 π \sqrt{\frac{m}{2 K}}$
If we displace the block on either side of the mean position, we observe that the displacement of each spring is the same. So, it's a parallel combination.

In a parallel combination, the equivalent spring constant is given by,
$K_{eq} = K_{1} + K_{2} = 2 K$
Then,
Time period of oscillation
$T = 2 π \sqrt{\frac{m}{K_{e q}}} = 2 π \sqrt{\frac{m}{2 K}}$
Thus, option (c) is the correct answer.

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