Question 5.9.5: To a large spherical container filled with gas, we add a fin...

1. The volume of the gas V (z) is the sum of the volume V_0 at equilibrium and of the change in volume Az due to the displacement z of the ball, i.e.

V (z) = V_0 + Az.

As the process is isentropic (5.90), the pressure and the volume satisfy the following relation,

pV^γ = const.

p (z) V (z)^γ = p_0 V^γ_0.

Performing a first-order series expansion in terms of the small dimensionless term Az/V_0, the pressure is given by,

p (z) = p0\biggl(\frac{1}{1+\frac{A}{V_0}z } \biggr)^\gamma \simeq p_0\Bigl(1-\gamma \frac{A}{V_0}z \Bigr).

2. Newton’s second law applied to the ball yields,

Mg + F = Ma

Projecting this equation on a vertical axis of unit vector \hat{z}  yields,

−Mg +(p (z) − p^{ext})A = M\ddot{z}.

This equation can be rewritten in the usual manner for a harmonic oscillator,

\ddot{z}+\frac{\gamma A^2p_0}{MV_0}z-\frac{1}{M}\Bigl((p_0-p^{ext})A-Mg\Bigr)=0.

3. The frequency f of the oscillations around the equilibrium position is given by,

f=\frac{\omega }{2\pi }=\frac{1}{2\pi \sqrt{\frac{\gamma A^2p_0}{MV_0} } }.

When solving this equation for γ, we obtain,

\gamma =\frac{4\pi ^2f^2MV_0}{A^2p_0}.