At a displacement from the equilibrium position, that is one-half the amplitude of oscillation, what fraction of the total energy of the oscillator is kinetic energy?

Question

At a displacement from the equilibrium position, that is one-half the amplitude of oscillation, what fraction of the total energy of the oscillator is kinetic energy? (A)  (1/2)  (B)  (1/4)  (C)  (1/√2)  (D)  (3/4)

Tardigrade Admin · Accepted Answer

In case of SHM K E=(1/2) m ω2(a2-x2) and at x=a / 2 K E=(1/2) m ω2[a2-(a / 2)2] =(3/4)[(1/2) m ω2 a2] Total energy =(1/2) m ω2 a2 ∴ Fraction of total energy =(K E/ text Total energy ) =((3/4)[(1/2) m ω2 a2]/(1)2 m ω a2)=(3/4)

Q. At a displacement from the equilibrium position, that is one-half the amplitude of oscillation, what fraction of the total energy of the oscillator is kinetic energy?

$\frac{1}{2}$

$\frac{1}{4}$

$\frac{1}{2}$

$\frac{3}{4}$

Q. At a displacement from the equilibrium position, that is one-half the amplitude of oscillation, what fraction of the total energy of the oscillator is kinetic energy?

21​

41​

2​1​

43​

In case of SHM KE=21​mω2(a2−x2) and at x=a/2 KE=21​mω2[a2−(a/2)2] =43​[21​mω2a2] Total energy =21​mω2a2 ∴ Fraction of total energy = Total energy KE​ =21​mωa243​[21​mω2a2]​=43​

$\frac{1}{2}$

$\frac{1}{4}$

$\frac{1}{2}$

$\frac{3}{4}$