A circular disc rolls down an inclined plane. The ratio of the rotational kinetic energy to the total kinetic energy is

Question

A circular disc rolls down an inclined plane. The ratio of the rotational kinetic energy to the total kinetic energy is (A)  (1/2)  (B)  (1/3)  (C)  (2/3)  (D)  (3/4)

Tardigrade Admin · Accepted Answer

Rotational kinetic energy, KR=(1/2) / ω2 KR=(1/2) × (M R2/2) ω2=(1/4) M v2 (∵ ∨=R ω) Translational kinetic energy KT=(1/2) M v2 Total kinetic energy =KT+KR =(1/2) M v2+(1/4) M v2 =(3/4) M v2 ∴ ( text Rotational kinetic energy / text Total kinetic energy ) =((1/4) M v2/(3)4 M v2) =(1/3)

Q. A circular disc rolls down an inclined plane. The ratio of the rotational kinetic energy to the total kinetic energy is

$\frac{1}{2}$

$\frac{1}{3}$

$\frac{2}{3}$

$\frac{3}{4}$

Q. A circular disc rolls down an inclined plane. The ratio of the rotational kinetic energy to the total kinetic energy is

21​

31​

32​

43​

Rotational kinetic energy, KR​=21​/ω2 KR​=21​×2MR2​ω2=41​Mv2 (∵∨=Rω) Translational kinetic energy KT​=21​Mv2 Total kinetic energy =KT​+KR​ =21​Mv2+41​Mv2 =43​Mv2 ∴ Total kinetic energy Rotational kinetic energy ​ =43​Mv241​Mv2​ =31​

$\frac{1}{2}$

$\frac{1}{3}$

$\frac{2}{3}$

$\frac{3}{4}$