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Question

A spherical bubble inside water has radiusR. Take the pressure inside the bubble and the water pressure to bep0. The bubble now gets compressed radially in an adiabatic manner so that its radius becomes (R-a). For 𝑎<<R the magnitude of the work done in the process is given by (4πP0R2a)X, where X is a constant andγ=𝐶𝑝𝐶𝑉=4130. The value ofX is________.


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Solution

The value ofX is 1.

Explanation:

Step1:CalculationofpressureP1V1γ=P2V2γP0(43πR3)γ=P2[43π(R-a)3]γP0(RR-a)3γ=P2Step2:CalculationofmagnitudeofworkdoneW=P1V1-P2V2γ-1=P043πR3-P0(RR-a)3γ43π(R-a)3(4130-1)[3γ=4110]=P043π1130[R3-R41/10(R-a)3-4110]=30P01143π[R3-R41/10(R-a)-1110]=10P04π11[R3-R41/10R-11/10(1-aR)-1110]=10P04π11[R3-R3(1-aR)-1110]=10P04π11R3[1-1+11a10R]=(4πP0R2a)Givenworkdone=(4πP0R2a)XTherefore,X=1


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