Answer:
a) 1,5x10³⁴
b) 1,5x10¹⁵
c) 7,3x10¹⁴
Explanation:
It is possible to sum different reactions with its equilibrium constant to obtain the equilibrium constant of the new reaction, thus:
a) 2 NO(g) ⇄ N₂(g) + O₂(g) kc = 1/4,3x10⁻²⁵
+ 2 NO(g) + O₂(g) ⇄ 2 NO₂(g) kc = 6,4x10⁹
= 4 NO(g) ⇄ N₂(g) + 2NO₂(g) Where its equilibirum constant is:
1/4,3x10⁻²⁵ × 6,4x10⁹ = 1,5x10³⁴
b) 4 NO(g) ⇄ 2 N₂(g) + 2 O₂(g) kc = 2× 1/4,3x10⁻²⁵
4 NO₂(g) ⇄ 4 NO(g) + 2 O₂(g) kc = 2× 1/6,4x10⁹
= 4 NO₂(g) ⇄ 2 N₂(g) + 4 O₂(g) Where its equilibirum constant is:
2× 1/4,3x10⁻²⁵ × 2× 1/6,4x10⁹ = 1,5x10¹⁵
c) 4 NO(g) ⇄ 2 N₂(g) + 2 O₂(g) kc = 2× 1/4,3x10⁻²⁵
2 NO₂(g) ⇄ 2 NO(g) + O₂(g) kc = 1/6,4x10⁹
= 2NO(g) + 2 NO₂(g) ⇄ 2 N₂(g) + 3 O₂(g) Where its equilibirum constant is:
2× 1/4,3x10⁻²⁵ × 1/6,4x10⁹ = 7,3x10¹⁴
I hope it helps!