Respuesta :
1) The temperature of the gas in state B is 1200 K
2) The work done by the gas from A to B is 4000 J
3) The work done by the gas from B to C is -5546 J
Explanation:
1)
The temperature of the gas when it is in state B can be found by using the ideal gas equation:
[tex]\frac{P_A V_A}{T_A}=\frac{P_B V_B}{T_B}[/tex]
where
[tex]P_A = 1\cdot 10^6 Pa[/tex] is the pressure in state A
[tex]V_A = 4 \cdot 10^{-3} m^3[/tex] is the volume in state A
[tex]T_A = 600 K[/tex] is the temperature in state A
[tex]P_B = 1\cdot 10^6 Pa[/tex] is the pressure in state B
[tex]V_B = 8\cdot 10^{-3} m^3[/tex] is the volume in state B
[tex]T_B[/tex] is the temperature in state B
Solving for [tex]T_B[/tex],
[tex]T_B=\frac{P_B V_B T_A}{P_A V_A}=\frac{(1\cdot 10^6)(8\cdot 10^{-3})(600)}{(1\cdot 10^6)(4\cdot 10^{-3})}=1200 K[/tex]
2)
The work done by a gas during an isobaric transformation (as the one between A and B) is
[tex]W=p\Delta V = p (V_B-V_A)[/tex]
where
p is the pressure (which is constant)
[tex]V_B[/tex] is the final volume
[tex]V_A[/tex] is the initial volume
Here we have:
[tex]p=1\cdot 10^6 Pa[/tex]
[tex]V_A = 4 \cdot 10^{-3} m^3[/tex] is the volume in state A
[tex]V_B = 8\cdot 10^{-3} m^3[/tex] is the volume in state B
Substituting,
[tex]W=(1\cdot 10^6)(8\cdot 10^{-3}-4\cdot 10^{-3})=4000 J[/tex]
3)
During an isothermal expansion, the produce between the pressure of the gas and its volume remains constant (Boyle's law), so we can write:
[tex]P_BV_B = P_C V_C[/tex]
where
[tex]P_B = 1\cdot 10^6 Pa[/tex] is the pressure in state B
[tex]V_B = 8\cdot 10^{-3} m^3[/tex] is the volume in state B
[tex]P_C = 2\cdot 10^6 Pa[/tex] is the pressure in state C
[tex]V_C[/tex] is the volume in state C
Solving for [tex]V_C[/tex],
[tex]V_C = \frac{P_B V_B}{P_C}=\frac{(1\cdot 10^6)(8\cdot 10^{-3})}{2\cdot 10^6}=4\cdot 10^{-3} m^3[/tex]
The work done by a gas during an isothermal transformation is given by
[tex]W=nRT ln(\frac{V_C}{V_B})[/tex] (1)
where
n is the number of moles
[tex]R=8.314 J/mol K[/tex] is the gas constant
T is the constant temperature (in this case, [tex]T_B[/tex])
[tex]V_C, V_B[/tex] are the final and initial volume, respectively
The number of moles of the gas can be found as
[tex]n=\frac{p_A V_A}{RT_A}=\frac{(1\cdot 10^6)(4\cdot 10^{-3})}{(8.314)(600)}=0.802 mol[/tex]
So now we can use eq.(1) to find the work done by the gas from B to C:
[tex]W=(0.802)(8.314)(1200) ln(\frac{4\cdot 10^{-3}}{8\cdot 10^{-3}})=-5546 J[/tex]
And the work is negative because the gas has contracted, so the work has been done by the surrounding on the gas.
Learn more about ideal gases:
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