Answer:
a)P/Po=0.263
b)γ=1.33 So gas is triatomic
c)[tex]\dfrac{KE_f}{KE_i}=1.56[/tex]
Explanation:
a)
initial pressure = Po
Initial volume = Vo
Final volume = 3.8 Vo
Lets take final pressure is P
we know that for free expansion process
PV= Constant
Po x Vo = P x 3.8 Vo
P=0.263 Po
So
P/Po=0.263
b)
Now gas is compressed in adiabatic manner
Final pressure = 1.56 Po
=1.56 Po
We know that for adiabatic process
[tex]P_1V_1^{\gamma}=P_2V_2^{\gamma}[/tex]
[tex]\dfrac{V_2}{V_1}=\left(\dfrac{P_1}{P_2}\right)^{\dfrac{1}{\gamma}}[/tex]
[tex]0.263P_o(3.8V_o)^{\gamma}=1.56P_o\times V_o^{\gamma}[/tex]
γ=1.33 So gas is triatomic
c)
We know that average kinetic energy given as
[tex]KE=\dfrac{3}{2}KT[/tex]
[tex]\dfrac{KE_f}{KE_i}=\dfrac{T_f}{T_i}[/tex]\
[tex]\dfrac{KE_f}{KE_i}=\dfrac{P_fV_f}{P_iV_i}[/tex]
[tex]\dfrac{KE_f}{KE_i}=\dfrac{1.56P_oV_o}{P_oV_o}[/tex]
[tex]\dfrac{KE_f}{KE_i}=1.56[/tex]
