Consider the reaction N2(g) + 3H2(g) = 2NH3(g). Suppose equilibrium establishes when exactly two thirds of hydrogen is used up and the pressure is at its standard value. What is the equilibrium constant for this reaction? Assume the gases are ideal and recall that in such cases the partial pressures of the components in gaseous mixtures add up to give the pressure itself. %3D Selected Answer: 37.9 Correct Answer: 38 Answer range +/- 0.5 (37.5 - 38.5)

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Consider the reaction N2(g) + 3H2(g) = 2NH3(g). Suppose equilibrium establishes when exactly two
thirds of hydrogen is used up and the pressure is at its standard value. What is the equilibrium
constant for this reaction? Assume the gases are ideal and recall that in such cases the partial
pressures of the components in gaseous mixtures add up to give the pressure itself.
%3D
Selected Answer:
37.9
Correct Answer:
38
Answer range +/- 0.5 (37.5 - 38.5)
Transcribed Image Text:Consider the reaction N2(g) + 3H2(g) = 2NH3(g). Suppose equilibrium establishes when exactly two thirds of hydrogen is used up and the pressure is at its standard value. What is the equilibrium constant for this reaction? Assume the gases are ideal and recall that in such cases the partial pressures of the components in gaseous mixtures add up to give the pressure itself. %3D Selected Answer: 37.9 Correct Answer: 38 Answer range +/- 0.5 (37.5 - 38.5)
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