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The rotational inertia of a collapsing spinning star drops to 13 its initial value. What is the ratio of the new rotational kinetic energy to the initial rotational kinetic energy?

Short Answer

Expert verified

The ratio of the new rotational K.E. to the initial rotational K.E. of the spinning star is 3

Step by step solution

01

Given

The relation between new and initial moment of inertia of the spinning star is,

If=13Ii

02

To understand the concept

Using the law of conservation of angular momentum, find the relation between the initial and the new angular speed. Then by using this relation and formula for rotational K.E energy, find the ratio of the new rotational K.E to the initial rotational K.E of the spinning star.

Formula:

i. The law conservation of angular momentum is

Initial angular momentum of the system = Final angular momentum of the system

ii. The rotational K.E is,

K.E=12±õÓ¬2

03

Calculate the ratio of the new rotational kinetic energy to the initial rotational kinetic energy

According to the law conservation of angular momentum

Initial angular momentum of the system = Final angular momentum of the system

IiÓ¬i=IfÓ¬f

But,If=13Ii

⇒IiӬi=13IfӬf⇒K.EfK.Ei=12IfӬf212IiӬi2⇒K.EfK.Ei=12×13IiӬf212Ii13Ӭf2⇒K.EfK.Ei=3

Therefore, the ratio of new rotational K.E. to the initial rotational K.E. of the spinning star is 3.

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