Solution:
In adiabatic process, \(T_1 V_1^{\gamma - 1} = T_2 V_2^{\gamma - 1}\). Here, \(\gamma - 1 = 1/3\). Since \(V_2/V_1 = 8\), we get \(T_2 = T_1 (1/8)^{1/3} = T_1/2 = 300/2 = 150\text{ K}\). The work done is \(W = \frac{nR(T_1 - T_2)}{\gamma - 1} = \frac{2 \times 2 \times (300 - 150)}{1/3} = 1800\text{ cal}\).
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