1.1 2NH3(g) (b) 3H2(g) AH is negative N₂ (g) + From the given reaction at equilibrium above, use Le Chatelier's Principle to decide what happens to the equilibrium position by: (a) Increasing the concentration of ammonia (b) Increasing the pressure (c) Increasing the temperature (d) Adding a catalyst (e) Increasing the concentration of hydrogen will shift the equilibrium position to the left

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Chapter13: Chemical Equilibrium
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Problem 13Q: Suppose a reaction has the equilibrium constant K = 1.3 108. What does the magnitude of this...
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1.1
2NH3(g)
AH is negative
(b)
N2(g) +
3H2 (g)
From the given reaction at equilibrium above, use Le Chatelier's Principle to decide what happens to the
equilibrium position by:
(a) Increasing the concentration of ammonia
(b) Increasing the pressure
I
(c) Increasing the temperature
(d) Adding a catalyst
(e) Increasing the concentration of hydrogen will shift the equilibrium position to the left
Transcribed Image Text:1.1 2NH3(g) AH is negative (b) N2(g) + 3H2 (g) From the given reaction at equilibrium above, use Le Chatelier's Principle to decide what happens to the equilibrium position by: (a) Increasing the concentration of ammonia (b) Increasing the pressure I (c) Increasing the temperature (d) Adding a catalyst (e) Increasing the concentration of hydrogen will shift the equilibrium position to the left
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