Chemical Equilibrium of Reaction's constant?

AI Thread Summary
The discussion focuses on understanding how to determine the favorability of forward and reverse reactions based on different equilibrium constants (Kc values). A higher Kc value indicates that the forward reaction is favored, while a lower Kc value suggests that the reverse reaction is favored. Specifically, Kc values of 103, 1, and 10^-4 imply that the reaction with Kc=103 has the most favorable forward reaction, while Kc=10^-4 favors the reverse reaction. The participants also discuss the algebraic reasoning behind these concepts, emphasizing the relationship between Kc and the concentrations of reactants and products at equilibrium. Overall, understanding the significance of Kc values is crucial for predicting reaction directionality.
Matriculator
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I'm currently studying for a test and I'm having problem with this concept:

If I have 3 different Equilibrium constants for different reactions like Kc=103, Kc=1 and KC=10-4, which one's forward reaction is most favorable, and which one's reverse reaction is most favorable?

Maybe it's the way the question is stated but I have a good understanding of most of the things in this chapter, this one doesn't make sense at all. Can anyone please help? Thank you very much.
 
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Matriculator said:
I'm currently studying for a test and I'm having problem with this concept:

If I have 3 different Equilibrium constants for different reactions like Kc=103, Kc=1 and KC=10-4, which one's forward reaction is most favorable, and which one's reverse reaction is most favorable?

Maybe it's the way the question is stated but I have a good understanding of most of the things in this chapter, this one doesn't make sense at all. Can anyone please help? Thank you very much.

The equilibrium constant is the ratio of the kinetic rate constant for the forward reaction to the kinetic rate constant for the reverse reaction.
 
Chestermiller said:
The equilibrium constant is the ratio of the kinetic rate constant for the forward reaction to the kinetic rate constant for the reverse reaction.

Thank you for replying. I understand that part, but what I'm having a hard time with is how to determine from different constants which movement(forward or backward) will be favorable(or not so).
 
Matriculator said:
Thank you for replying. I understand that part, but what I'm having a hard time with is how to determine from different constants which movement(forward or backward) will be favorable(or not so).
If K is high, then the forward reaction is favored over the reverse reaction. If K is low, then the reverse reaction is favored over the forward reaction.
 
Chestermiller said:
If K is high, then the forward reaction is favored over the reverse reaction. If K is low, then the reverse reaction is favored over the forward reaction.

But why is this so- perhaps algebraically? My teacher told me something like this but I couldn't make out the reasoning behind it. Thank you.
 
Write the equilibrium constant for the reaction

A -> B

If it is higher than 1 - which substance is in the excess? Where does the equilibrium lie, on the left, or on the right?

And if it is lower than 1?
 
For the reaction that Borek wrote, the kinetic expression at equilibrium is:

kf[A]-kr=0

Now solve algebraically for the equilibrium constant /[A]. This should be in your textbook.

Chet
 
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