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Question

A solid sphere of uniform density and radius R applies a gravitational force of attraction equal to F1 on a particle placed at a distance 3R from the centre of the sphere. A spherical cavity of radius R2 is now made in the sphere as shown in the figure. The sphere with cavity now applies a gravitational force F2 on the same particle. The ratio F2F1 is:

A
950
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B
4150
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C
325
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D
2225
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Solution

The correct option is B 4150
Gravitation force due to whole sphereF1=GMm9R2 where, M=ρ×43πR3
When a sphere of radius R2 is removed, mass of the removed sphere ia
M1=ρ43π (R2)3=M8
The new gravitational force is,
F2=GMmR2G(M8)m(25R24)
F2=GMm9R2[19150]
F2=GMmR2[419(50)]
F2F1=4150

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