Respuesta :
Answer: The most likely partial pressures are 98.7MPa for NO₂ and 101.3MPa for N₂O₄
Explanation: To determine the partial pressures of each gas after the increase of pressure, it can be used the equilibrium constant Kp.
For the reaction 2NO₂ ⇄ N₂O₄, the equilibrium constant is:
Kp = [tex]\frac{P(N_{2}O_{4} )}{P(NO_{2} ^{2}) }[/tex]
where:
P(N₂O₄) and P(NO₂) are the partial pressure of each gas.
Calculating constant:
Kp = [tex]\frac{38.8}{61.2^{2} }[/tex]
Kp = 0.0104
After the weights, the total pressure increase to 200 MPa. However, at equilibrium, the constant is the same.
P(N₂O₄) + P(NO₂) = 200
P(N₂O₄) = 200 - P(NO₂)
Kp = [tex]\frac{P(N_{2}O_{4} )}{P(NO_{2} ^{2}) }[/tex]
0.0104 = [tex]\frac{200 - P(NO_{2}) }{[P(NO_{2} )]^{2}}[/tex]
0.0104[tex][P(NO_{2} )]^{2}[/tex] + [tex]P(NO_{2} )[/tex] - 200 = 0
Resolving the second degree equation:
[tex]P(NO_{2} )[/tex] = [tex]\frac{-1+\sqrt{9.32} }{0.0208}[/tex]
[tex]P(NO_{2} )[/tex] = 98.7
Find partial pressure of N₂O₄:
P(N₂O₄) = 200 - P(NO₂)
P(N₂O₄) = 200 - 98.7
P(N₂O₄) = 101.3
The partial pressures are [tex]P(NO_{2} )[/tex] = 98.7 MPa and P(N₂O₄) = 101.3 MPa
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