Complete Question
The complete question is shown on the first uploaded image
Answer
a
As the valve is opened , the gas will flow into the empty container until the both containers have the same pressure
b
[tex]\Delta H = 0\ , \Delta E = 0 , q= 0 , w= 0[/tex]
c
The driving force for this process is the increase in entropy this is because the movement of the internal energy of the gas into a larger volume, what this does is that it increases the amount of disorder(entropy).
Explanation
In order to obtain the parameter in the part B of the question we are first obtain the initial pressure, using the ideal gas equation
[tex]P = \frac{nRT}{V}[/tex]
[tex]P = \frac{(2.4mol)(0.0821\frac{1 atm}{K \cdot \ mol} )}{4.0L}[/tex]
[tex]P =15 \ atm[/tex]
The next thing is to obtain the new pressure of the gas , using boyle's law
[tex]P_1V_1 = P_2V_2[/tex]
[tex]P_2 = \frac{P_1 V_1}{V_2}[/tex]
[tex]P_2 = \frac{(15 \ atm)(4.0L)}{24.0 L}[/tex]
[tex]P_2 = 2.5 \ atm[/tex]
Since the this process is isothermal , the change in heat is equal to zero
i.e q = 0 J
The workdone to move the gas to the other container is zero because the the pressure at this second container is zero due to the fact that it is a vacuum
i.e [tex]w = -P_{external} \Delta V[/tex]
[tex]=-(0 \ atm) (24.0 - 4.0L)[/tex]
[tex]= 0L \cdot atm[/tex]
Since the change in heat is zero and the workdone is zero then the change in internal energy is equal to 0
This is because the change in internal energy is equal to a summation of change in heat and the workdone
i.e [tex]\Delta E = q + w[/tex]
[tex]= 0J[/tex]
Generally the change in enthalpy is mathematically represented as
[tex]\Delta H = n C_p \Delta T[/tex]
Since the temperature is zero this means that the change in temperature is zero , substituting this value for change in temperature into the equation for change in enthalpy
[tex]\Delta H = n C_p (0)[/tex]
[tex]= 0J[/tex]
