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Question

Physics Question on Oscillations

An object of mass 0.2 kg executes simple harmonic motion along xx-axis with frequency of 25/π\pi Hz. At the position xx = 0.04 m, the object has a kinetic energy of 0.5 J and potential energy of 0.4 J. The amplitude of oscillation is equal to

A

0.05 m

B

0.06 m

C

0.01 m

D

0.02 m

Answer

0.06 m

Explanation

Solution

Total energy, E=12mω2A2E = \frac{1}{2} m \omega^2 A^2
E=12m(2πυ)2A2(ω=2πυ)E = \frac{1}{2} m ( 2\pi \upsilon)^2 A^2 \:\:\:\: (\because \, \omega = 2 \pi \upsilon)
A=12πυ2Em\therefore \, A = \frac{1}{2 \pi \upsilon} \sqrt{\frac{2E}{m}}
Putting E=K+U,E = K + U , we get
A=12π(25π)2×(0.5+0.4)0.2=A = \frac{1}{2\pi\left(\frac{25}{\pi}\right)}\sqrt{\frac{2\times\left(0.5+0.4\right)}{0.2}}= 0.06 m