Consider the following system at equilibrium where AH = -18.8 kJ/mol, and K = 10.5, at 350 K. 2 CH₂Cl₂ (g) CH4 (g) + CCl4 (g) When 0.21 moles of CH₂Cl₂ (g) are added to the equilibrium system at constant temperature: The value of Ke The value of Qc The reaction must Orun in the forward direction to restablish equilibrium. Orun in the reverse direction to restablish equilibrium. Oremain the same. It is already at equilibrium. The concentration of CH4 will Submit Answer Retry Ent increase decrease remain the same e group attempts rernier

Chemistry: The Molecular Science
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Author:John W. Moore, Conrad L. Stanitski
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Chapter12: Chemical Equilibrium
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Consider the following system at equilibrium where AH = -18.8 kJ/mol, and Kc = 10.5, at 350 K.
2 CH₂Cl₂ (g) CH4 (g) + CCl4 (g)
When 0.21 moles of CH₂Cl₂ (g) are added to the equilibrium system at constant temperature:
The value of Ke
The value of Qc
The reaction must
Orun in the forward direction to restablish equilibrium.
Orun in the reverse direction to restablish equilibrium.
Oremain the same. It is already at equilibrium.
The concentration of CH4 will
Submit Answer
Ko
Retry Ent
increase
decrease
remain the same
e group attempts rernaun
Transcribed Image Text:Consider the following system at equilibrium where AH = -18.8 kJ/mol, and Kc = 10.5, at 350 K. 2 CH₂Cl₂ (g) CH4 (g) + CCl4 (g) When 0.21 moles of CH₂Cl₂ (g) are added to the equilibrium system at constant temperature: The value of Ke The value of Qc The reaction must Orun in the forward direction to restablish equilibrium. Orun in the reverse direction to restablish equilibrium. Oremain the same. It is already at equilibrium. The concentration of CH4 will Submit Answer Ko Retry Ent increase decrease remain the same e group attempts rernaun
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