Question

The work done in adiabatic compression of 2 mole of an ideal monoatomic gas by constant external pressure of 2 atm starting from initial pressure of 1 atm and initial temperature of 300K is:
(Take $R=2cal/K.mol$)

• A. 360 cal
• B. 720 cal
• C. 800 cal
• D. 550 cal

Answer 1

The correct option is B 720 cal

Given:
$n=2mol{P}_{ext}=2atm=P_2{P}_1=1atmT=300K,R=2cal/K.mol$

for monoatomic gas, $C_v=\frac{3}{2}R$
for adiabatic process $q=0\therefore fromIstlawdU=w$
so, $n{C}_{v}dT=-P_{ext}dV$
$n{C}_v(T_2-T_1)=-P_{ext}(V_2-V_1)$
$n{C}_v(T_2-T_1)=-P_{ext}(\frac{nR{T}_2}{P_2}-\frac{nR{T}_1}{P_1})$
$n\frac{3}{2}R(T_2-300)=-2(\frac{nR{T}_2}{2}-\frac{nR\times 300}{1})$

$\frac{3}{2}(T_2-300)=-T_2+600$
$T_2=420K$

so, work done = $n{C}_v(T_2-T_1)$
$=2\times \frac{3}{2}\times 2\times (420-300)$
$w=720cal$