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Standard XIII

Physics

SHM expression

In a horizont...

Question

In a horizontal spring mass system, mass $m$ is released after being displaced towards right by some distance at $t = 0$ on a frictionless surface. The phase angle of the motion in radian when it passes through the equilibrium position for the first time is

\frac{π}{2}

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π

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\frac{3 π}{2}

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0

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Solution

The correct option is B $π$
We know that equation of motion is given by, $x = A cos (ω t)$ , when particle is at extreme position.
When it passes through mean position for the first time, the mass has covered $1 / 4^{th}$ of the complete oscillation.
Therefore, $t = T / 4$ .
Thus, phase difference $= ω t = \frac{2 π}{T} \times \frac{T}{4} = \frac{π}{2}$
Thus phase angle = phase difference + initial phase
$∴ \frac{π}{2} + \frac{π}{2} = π$

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SHM expression

Standard XIII Physics

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In a horizontal spring mass system, mass m is released after being displaced towards right by some distance at t=0 on a frictionless surface. The phase angle of the motion in radian when it passes through the equilibrium position for the first time is

In a horizontal spring mass system, mass $m$ is released after being displaced towards right by some distance at $t = 0$ on a frictionless surface. The phase angle of the motion in radian when it passes through the equilibrium position for the first time is