Answer:46.03 KJ
Explanation:
no of moles(n)=5
temperature of air(T)=[tex]20^{\circ}[/tex]
pressure(p)=1 atm
final volume is [tex]\frac{V}{10}[/tex]
We know work done in adaibatic process is given by
W=[tex]\frac{P_iV_i-P_fV_f}{\gamma -1}[/tex]
[tex]\gamma[/tex] for air is 1.4
we know [tex]P_iV_i^{\gamma }= P_fV_f^{\gamma }[/tex]
[tex]1\left ( V\right )^{\gamma }[/tex]=[tex]P_f\left (\frac{v}{10}\right )^{\gamma }[/tex]
[tex]10^{\gamma }=P_f[/tex]
[tex]P_f=25.118 atm[/tex]
W=[tex]\frac{1\times 0.1218-25.118\times 0.01218}{1.4 -1}[/tex]
W=-46.03 KJ
it means work is done on the system
