Answer:
N₂ = 0.7515atm
O₂ = 0.1715atm
NO = 0.0770atm
Explanation:
For the reaction:
N₂(g) + O₂(g) ⇄ 2NO(g)
Where Kp is defined as:
[tex]Kp = \frac{P_{NO}^2}{P_{N_2}P_{O_2}}}[/tex]
Pressures in equilibrium are:
N₂ = 0.790atm - X
O₂ = 0.210atm - X
NO = 2X
Replacing in Kp:
0.0460 = [2X]² / [0.790atm - X] [0.210atm - X]
0.0460 = 4X² / 0.1659 - X + X²
0.0460X² - 0.0460X + 7.6314x10⁻³ = 4X²
-3.954X² - 0.0460X + 7.6314x10⁻³ = 0
Solving for X:
X = - 0.050 → False answer. There is no negative concentrations.
X = 0.0385 atm → Right answer.
Replacing for pressures in equilibrium:
N₂ = 0.790atm - X = 0.7515atm
O₂ = 0.210atm - X = 0.1715atm
NO = 2X = 0.0770atm
Answer:
partial pressure N2 = 0.7515 atm
partial pressure O2 = 0.1715 atm
partial pressure NO = 0.077 atm
Explanation:
Step 1: Data given
Temperature = 2200 °C
Pressure of N2 = 0.790 atm
Pressure of O2 = 0.210 atm
Kp = 0.0460
Step 2: The balanced equation
N2(g) + O2(g) ⇆ 2NO(g)
Step 3: The pressure at equilibrium
pN2 = 0.790 - X atm
pO2 = 0.210 - X atm
pNO = 2X
Step 4: Define Kp and the partial pressures
Kp = (pNO)² / (pO2 * pN2)
0.0460 = 4X² / (0.210 - X)(0.790 - X)
X = 0.0385
pN2 = 0.790 - 0.0385 = 0.7515 atm
pO2 = 0.210 - 0.0385 = 0.1715 atm
pNO = 2*0.0385 = 0.077 atm
