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Question

Two discs of moments of inertia I1 and I2 about their respective axes (normal to the disc and passing through the centre), and rotating with angular speeds ω1 and ω2 are brought into contact face to face with their axes of rotation coincident.

(a) What is the angular speed of the two-disc system?

Show that the kinetic energy of the combined system is less than the sum of the initial kinetic energies of the two discs. How do you account for this loss in energy? Take ω1ω2

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Solution

Moment of inertia of dis I=I1
Angular speed of disc I=ω1

Moment of speed of disc II=I2
Angularmomentum of disc II=ω2

Angular momentum of disc I,L1=I1ω1
Angular momentum of disc II,L2=I2ω2
Total initial angular momentum, Li=I1ω1+I2ω2
When the two discs are joined together, their moments of inertia get added up.
Moment of inertia of the system of two discs, I=I1+I2
Let ω be the angular speed of the system.
Total final angular momentum, Lr=(I1+I2)ω
Using the law of conservation of angular momentum, we have:
Li=LfI1ω1+I2ω2=(I1+I2)ω ω=I1ω1+I2ω2I1+I2

Kinetic energy of disc I, E1=12I1ω21
Kinetic energy of disc II, E2=12I2ω22
Total initial kinetic energy, EI=12(I1ω21+I2ω22)
When the discs are joined, their moments of inertia get added up.
Moment of inertia of the system, I=I1+I2
Angular speed of the system = ω
Final kinetic energy Ef:
=12(I1+I2)ω2=12(I1+I2)(I1ω1+I2ω2I1+I2)2=12(I1ω1+I2ω2)2I1+I2 EiEf=12(I1ω21+I2ω22)(I1ω1+I2ω2)22(I1+I2)
=12I1ω21+12I2ω2212121ω21(I1+I2)12I22ω22(I1+I2)122I1I2ω1ω2(I1+I2)=1(I1+l2)[12I21ω21+12I2I2ω21+12I1I2ω22+12I22ω2212I21ω2112I22ω22I1I2ω1ω2]=I1I22(I1+I2)[ω21+ω222ω1ω2]=I1I2(ω1ω2)22(I2+I2)
All the quantities on RHS are positive
EiEf>0Ei>Ef
The loss of KE can be attributed to the frictional force that comes into play when the two discs come in contact with each other.


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