15.23 The equilibrium constant for the reaction 2 NO(g) + Br2(8) = 2 NOB1(g) = 1.3 × 10-2 at 1000 K. (a) At this temperature does is K. the equilibrium favor NO and Br2, or does it favor NOBR? (b) Calculate K. for 2 NOBr(g8) (c) Calculate K, for NOBr(g) = NO(g) + ¿Br2(8). 2 NO(8) + Br2(8).

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15.23 The equilibrium constant for the reaction
2 NO(8) + Br2(8) = 2 NOB1(g)
= 1.3 × 10-2 at 1000 K. (a) At this temperature does
is K.
the equilibrium favor NO and Br2, or does it favor NOBr?
(b) Calculate K. for 2 NOBr(g8)
(c) Calculate K, for NOBr(g) = NO(g) + ¿Br2(8).
2 NO(8) + Br2(8).
Transcribed Image Text:15.23 The equilibrium constant for the reaction 2 NO(8) + Br2(8) = 2 NOB1(g) = 1.3 × 10-2 at 1000 K. (a) At this temperature does is K. the equilibrium favor NO and Br2, or does it favor NOBr? (b) Calculate K. for 2 NOBr(g8) (c) Calculate K, for NOBr(g) = NO(g) + ¿Br2(8). 2 NO(8) + Br2(8).
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