Answer:
a) Work done by gas = -15.584 KJ
b) Energy transferred = 15.584 KJ
Explanation:
Given:
Initial volume of the gas, V₁ = 5.39 m³
Final volume, V₂ = 2.84 m³
Temperature, T = 27.2°C = 273+27.2 = 300.2K
Number of moles, n = 9.75 mol
a) Work done for the given isothermal process is
[tex]W=nRTln(\frac{V_2}{V_1})[/tex]
where, R is the ideal gas constant = 8.31 J/mol.K
substituting the values we get,
[tex]W=9.75\times 8.31\times 300.2ln(\frac{2.84}{5.39})[/tex]
or
[tex]W=-15584.72 J = -15.584 KJ[/tex]
b) From the first law of thermodynamics
change in internal energy = Heat added - Work done
or, [tex]\Delta Q = \Delta U - W[/tex]
Now for the isothermal process, ΔU = 0
thus,
[tex]\Delta Q = - W[/tex]
or
[tex]\Delta Q = - (-15.584 KJ) = 15.584 KJ[/tex]
