The total energy of the particle executing simple harmonic motion of amplitude A is 100 J. At a distance of 0.707 A from the mean position, its kinetic energy is

Question

The total energy of the particle executing simple harmonic motion of amplitude A is 100 J. At a distance of 0.707 A from the mean position, its kinetic energy is (A) 25 J (B) 50 J (C) 100 J (D) 12.5 J

Tardigrade Admin · Accepted Answer

We know that, Total energy E=(1/2) m ω2 A2=100 J and kinetic energy KE =(1/2) m ω2(A2-y2) =(1/2) m ω2[A2-((A/√2))2] =(1/2) m ω2[(2 A2-A2/2)] =(1/2) m ω2 (A2/2) =(100/2) J =50 J

Q. The total energy of the particle executing simple harmonic motion of amplitude $A$ is $100 J$ . At a distance of $0.707 A$ from the mean position, its kinetic energy is

25 J

50 J

100 J

12.5 J

70 J

Q. The total energy of the particle executing simple harmonic motion of amplitude A is 100J. At a distance of 0.707A from the mean position, its kinetic energy is