Select all that apply. For the following equilibrium system, which of the following changes will form more CaCO3? CO2(g) + Ca(OH)2(s) = CaCO3(s) + H2O(l) 0 ΔΗ =-113 kJ rxn Decrease temperature at constant pressure (no phase change). Increase volume at constant temperature. Increase partial pressure of CO2. Remove one-half of the initial CaCO3.

Chemistry: The Molecular Science
5th Edition
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:John W. Moore, Conrad L. Stanitski
Chapter12: Chemical Equilibrium
Section: Chapter Questions
Problem 75QRT: Consider the system 4 NH3(g) + 3 O2(g) ⇌ 2 N2(g) + 6 H20(ℓ) ΔrH° = −1530.4 kJ/mol How will the...
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Select all that apply.
For the following equilibrium system, which of the following changes will form more CaCO3?
CO2(g) + Ca(OH)2(s) = CaCO3(s) + H2O(l)
0
ΔΗ
=-113 kJ
rxn
Decrease temperature at constant pressure (no phase change).
Increase volume at constant temperature.
Increase partial pressure of CO2.
Remove one-half of the initial CaCO3.
Transcribed Image Text:Select all that apply. For the following equilibrium system, which of the following changes will form more CaCO3? CO2(g) + Ca(OH)2(s) = CaCO3(s) + H2O(l) 0 ΔΗ =-113 kJ rxn Decrease temperature at constant pressure (no phase change). Increase volume at constant temperature. Increase partial pressure of CO2. Remove one-half of the initial CaCO3.
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