Q1/ The ideal gas equation of state is given by: PV=nRT Where: P is the pressure (atm), V is the volume (L), T is the tempe (K), R=0.08206 (L atm)/(mol K) is the gas constant, and n is the num moles. Real gases, especially at high pressures, deviate from this behavior. responses can be modeled with the yan der Waals equation:

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Q1/ The ideal gas equation of state is given by:
PV=nRT
Where: P is the pressure (atm), V is the volume (L), T is the temperature
(K), R=0.08206 (L atm)/(mol K) is the gas constant, and n is the number of
moles.
Real gases, especially at high pressures, deviate from this behavior. Their
responses can be modeled with the van der Waals equation:
nRT
n?a
V – nb
V2
Where a and b are material constants. For Cl, a= 6.579 L²atm/mol?, and b=
0.0562 L/mol.
Calculate P from both equations and display the results in a three-column
table where the values of V and both P are displayed in the first, second, and
third columns, respectively for 40 values of V between 0.06 and 1.1. Take
T-298K and n=3 moles.
Transcribed Image Text:Q1/ The ideal gas equation of state is given by: PV=nRT Where: P is the pressure (atm), V is the volume (L), T is the temperature (K), R=0.08206 (L atm)/(mol K) is the gas constant, and n is the number of moles. Real gases, especially at high pressures, deviate from this behavior. Their responses can be modeled with the van der Waals equation: nRT n?a V – nb V2 Where a and b are material constants. For Cl, a= 6.579 L²atm/mol?, and b= 0.0562 L/mol. Calculate P from both equations and display the results in a three-column table where the values of V and both P are displayed in the first, second, and third columns, respectively for 40 values of V between 0.06 and 1.1. Take T-298K and n=3 moles.
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