Two equilibrium reactions of nitrogen with oxygen, with their corresponding equilibrium constants (Kc) at a certain temperature, are given below. reaction (1): N2(g) + O2(g) 2 NO(g); Kc = 1.54e-31 reaction (2): N2(g) + 1/2 O2(g) N2O(g); Kc = 2.61e-24 Using this set of data, determine the equilibrium constant for the following reaction, at the same temperature. reaction (3): N2O(g) + 1/2 O2(g) 2 NO(g)

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sushila679 sushila679 · Answer 1 · 2020-02-18T10:06:00+01:00

Answer:

Kc = 1.54e - 31 / 2.61e - 24

Explanation:

1 ) [tex]N_{2}(gas) + O_{2}(gas)\rightarrow 2NO(gas)[/tex] ; Kc = 1.54e - 31

2) [tex]N_{2}(gas) + 1/2O_{2}(gas)\rightarrow N_{2}O(gas)[/tex] ; Kc = 2.16e - 24

upon reversing ( 2 ) equation

[tex]N_{2}O(gas)\rightarrow N_{2}(gas) + 1/2O_{2}(gas)[/tex] Kc = 1/2.16e - 24

now adding 1 and reversed equation (2)

[tex]N_{2}(gas) + O_{2}(gas)\rightarrow 2NO(gas)[/tex]

[tex]N_{2}O(gas)\rightarrow N_{2}(gas) + 1/2O_{2}(gas)[/tex]

we get ,

[tex]N_{2}O(gas) + 1/2O_{2}(gas)\rightarrow 2NO(gas)[/tex] Kc = 1.54e-31 × 1/2.61e - 24

equilibrium constant of equation (3) is -

Kc = 1.54e - 31 / 2.61e - 24