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Question

Inside a fixed sphere of radius R and uniform desnity ρ, there is a sphericfal cavity of radius R/2 such that the surface of cavity passes through the center of the sphere as shown in the figure. A particle of mass m0 is released from rest from centre B of cavity which strikes the center A of sphere with a velocity which is equal to 2πGρR2β. Then the value of β will be.


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Solution

VA = [Potential due to the complete sphere at A][Potential due to the spherical cavity at A]
VA=3GM2RGMr
M=43πR3ρ
M=43π(R2)3ρ
=18(43πR3ρ)=M8
Therefore
VA=GR[πρR332πρR3]=53πGρR2
Now
VB=[Potential due to the complete sphere at B][Potential due to the spherical cavity at B]
=GM2R3(3R2r2)[3GM2r]
or
VB=11GM8R+3GMR=GMR
Now,
12m0v2=UBUA=m0(VBVA)
v=2(VBVA)
v=2πGρR23
β=3

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