Answer:
P[H2] = P[I2] = 0.02 atm
P[HI] = 5.98 atm
Explanation:
The ICE table for the given reaction is:
        H2(g)  +    I2(g)    ↔   2HI(g)
Initial    3.01atm    3.01atm       -
Change   -x         -x           +2x
Equilib   (3.01-x)     (3.01-x)        2x
The equilibrium constant, Kp is given as:
[tex]Kp = \frac{P_{HI}^{2}}{P_{H2}*P_{I2}}[/tex]
[tex]483*10^{2} = \frac{(x)^{2}}{(3.01-x)^{2}}[/tex]
x = 2.99 atm
Equilibrium partial pressure of H2 = I2 = 3.01-2.99 = 0.02 atm
Equilibrium partial pressure of HI = 2x = 2(2.99) = 5.98 atm
Answer:
The partials pressures are:
PHI = 5.016 atm
PH2 = PI2 = 0.502 atm
Explanation:
please look at the solution in the attached Word file
