1 (a) N₂(g) + O₂(g) 2NO (g) AH298 + 180 kJ mol-¹ From the equilibrium shown above, use Le Chatelier's Principle to decide what happens to the equilibrium position by: (a) Increasing the concentration of NO (b) Increasing the pressure (c) Increasing the temperature (d) Increasing the concentration of N2 (e) Adding a catalyst

Chemistry for Engineering Students
3rd Edition
ISBN:9781285199023
Author:Lawrence S. Brown, Tom Holme
Publisher:Lawrence S. Brown, Tom Holme
Chapter12: Chemical Equilibrium
Section: Chapter Questions
Problem 12.54PAE: Consider the following system: 4NH 3 ( g )+ 3O 2 ( g ) N 2 ( g )+ 6H 2 O( l ) H=1530.4kJ (a) How...
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1 (a) N₂(g)
+ O₂(g)
2NO (g)
AH298 + 180 kJ mol-¹
From the equilibrium shown above, use Le Chatelier's Principle to decide what happens to the equilibrium
position by:
(a) Increasing the concentration of NO
(b) Increasing the pressure
(c) Increasing the temperature
(d) Increasing the concentration of N2
(e) Adding a catalyst
Transcribed Image Text:1 (a) N₂(g) + O₂(g) 2NO (g) AH298 + 180 kJ mol-¹ From the equilibrium shown above, use Le Chatelier's Principle to decide what happens to the equilibrium position by: (a) Increasing the concentration of NO (b) Increasing the pressure (c) Increasing the temperature (d) Increasing the concentration of N2 (e) Adding a catalyst
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