Determine the value of the equilibrium constant, Kgoal, for the reactionN2(g)+H2O(g)⇌NO(g)+12N2H4(g), Kgoal=?by making use of the following information:1. N2(g)+O2(g)⇌2NO(g), K1 = 4.10×10−312. N2(g)+2H2(g)⇌N2H4(g), K2 = 7.40×10−263. 2H2O(g)⇌2H2(g)+O2(g), K3 = 1.06×10−10Express your answer numerically.

Question

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Respuesta :

zainsubhani zainsubhani · Answer 1 · 2020-01-21T06:57:42+01:00

Answer:

[tex]K_{goal}=1.793*10^{-33}[/tex]

Explanation:

N2(g)+O2(g)⇌2NO(g), [tex]K_1 = 4.10*10^{-31}[/tex]

N2(g)+2H2(g)⇌N2H4(g), [tex]K_2 = 7.40*10^{-26}[/tex]

2H2O(g)⇌2H2(g)+O2(g), [tex]K_3 = 1.06*10^{-10}[/tex]

If we add above reaction we will get:

2N2(g)+2H2O(g)⇌2NO(g)+N2H4(g) Eq (1)

Equilibrium constant for Eq (1) is [tex]K_1*K_3*K_3[/tex]

Divide Eq (1) by 2, it will become:

N2(g)+H2O(g)⇌NO(g)+1/2N2H4(g) Eq (2)

Equilibrium constant for Eq (2) is [tex](K_1*K_3*K_3)^{1/2}[/tex]

[tex]Equilibrium constant =K_{goal}= (K_1*K_2*K_3)^{1/2}\\K_{goal}= (4.10*10^{-31} *7.40*10^{-26}*1.06*10^{-10})^{1/2}\\K_{goal}=1.793*10^{-33}[/tex]