A fluorocarbon liquid has a standard enthalpy of vaporization of 32 kJ/mol. Calculate q (heat), w (work), ΔH (enthalpy change) and ΔU (internal energy change) when 2,50 mol are vaporized at 250 K and 750 torr.
dHvap = 32kJ/mol
q = 32kJ/mol x 2.5 mol
q = 80kJ
pV = nRT
(750 x 133)V = (2.5)(8.31451)(250)
V= .0521 J/Pa
w = pex x dV
w = (750 x 133)Pa x .0521 J/Pa
w = 5196.975 J
dU = w + q
dU = 5196.975 + 80000
dU = 85196.975 J
dH = dU + pV
dH = 85196.975 + 5196.975
dH = 90393.95 J
Would you agree with the following calculations or am I going wrong somewhere in regards to understanding the theory?
All feedback is appreciated because I have my exam on the 14th of May and between work and other exams I am struggling to grasp the full understanding!
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Topic: enthalpy, heat, work (Read 7926 times)