Consider the following system at equilibrium at 298 K: 2NO(g) + Br₂(g) 2NOBr(g) + 3.85 kcal Indicate whether each individual change would favor the production of NOBr(g). Evaluate each change separately, assuming that all other conditions remain constant. Decreasing the temperature. Decreasing the pressure. Decreasing the volume. Removing NOBr. Adding Br2. _____
Consider the following system at equilibrium at 298 K: 2NO(g) + Br₂(g) 2NOBr(g) + 3.85 kcal Indicate whether each individual change would favor the production of NOBr(g). Evaluate each change separately, assuming that all other conditions remain constant. Decreasing the temperature. Decreasing the pressure. Decreasing the volume. Removing NOBr. Adding Br2. _____
Chemistry
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ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
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Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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
Transcribed Image Text:Consider the following system at equilibrium at 298 K:
2NO(g) + Br₂(g) 2NOBr(g) + 3.85 kcal
Indicate whether each individual change would favor the production of NOBr(g). Evaluate each change
separately, assuming that all other conditions remain constant.
Decreasing the temperature.
Decreasing the pressure.
Decreasing the volume.
Removing NOBr.
Adding Br2.
_____

Transcribed Image Text:Consider the following system at equilibrium at 298 K:
2 NO (g) = N₂ (g) + O₂ (g) + 43.2 kcal
Indicate whether each individual change would favor the production of N₂ (g). Evaluate each change
separately, assuming that all other conditions remain constant.
Decreasing the temperature.
Decreasing the pressure.
Increasing the volume.
Adding NO.
Adding 02.
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