Verified
(i)
(a) The amount in kg, of superpure grade N2, per container is calculated below,
PV = nRT
n = PVT1/(TP1V1/n1)) ... where suffix 1 indicates conditions at STP.
n = (12400)(43x10-3)(273)/((298)(101)(22.4)) = 0.22 kmol
m = Mn = 28 x 0.22 = 6.16 kg.
Hence according to Ideal gas law, there'll be 6.16 kg per unit of superpure-grade N2.
And the annual gross sales will be $ 6.1 x 6.16 x 30000 = $1127280 = $1.13 million
(b) The amount in kg, of superpure grade O2, per container is calculated below,
PV = nRT
n = PVT1/(TP1V1/n1)) ... where suffix 1 indicates conditions at STP.
n = (15000)(43x10-3)(273)/((298)(101)(22.4)) = 0.27 kmol
m = Mn = 32 x 0.27 = 8.64 kg.
Hence according to Ideal gas law, there'll be 8.64 kg per unit of superpure-grade O2.
And the annual gross sales will be $ 9 x 8.64 x 30000 = $ 2332800 = $2.33 million
(ii)
The following data is obtained from Internet.
Acetylene
MW 26 g/mol
Pc 61.91 bar
Tc 35.1 oC
n-butane
MW 58.12
Pc 38 bar
Tc 425 K
The total amount of mixture in kmol = 30/26 + 50/58.12 = 2.01
x1 = mole fraction of acetylene = (30/26)/2.01 = 0.57
x2 = mole fraction of n-butane = 0.43
Redlich-Kwong parameters (Note that P is in kPa and T is in K)
acetylene:
a1 = 0.427R2Tc2.5/Pc = 0.427(8.314)2(308.2)2.5/6273 = 7846
b1 = 0.0866RTc/Pc = 0.0866(8.314)(308.2)/6273 = 0.0354
n-butane:
a2 = 0.427R2Tc2.5/Pc = 0.427(8.314)2(425)2.5/3850 = 28547
b2 = 0.0866RTc/Pc = 0.0866(8.314)(425)/3850 = 0.0795
Using the following mixing rules, we'll find a and b for the binary mixture.
aij = (1 – kij)ai1/2aj1/2 and a = ΣΣxixjaij ; b = Σxibi ......(1)
a12 = a21 = (1 – 0.092)(7846)1/2(28547)1/2 = 13589
a11 = a1; and a22 = a2.
Now using equation (1)
a = (0.57)(0.57)(7846) + (0.57)(0.43)(13589) + (0.43)(0.43) (28547) + (0.43)(0.57)(13589) = 14489
b = 0.57x0.0354 + 0.43x0.0795 = 0.054
The Redlich Kwong equation,
P = {RT/(Vm – b)} - {a/(T1/2Vm(Vm+b))}
Use the given values,
P = 30 bar = 3030.75 kPa
T = 450 K
After rearraning the Redlich-Kwong equation we get a cubic polynomial in Vm.
64483Vm3 – 79465Vm2 – 4479Vm – 782 = 0
We obtain the roots using MATLAB's roots function,
1.29
-0.0305 + 0.0919i
-0.0305 - 0.0919i
Hence the volume of the vessel is Vm x No of moles,
= 1.29 x 2.01 = 2.6 m3 = 2600 lit.