The Difference between Q and Kc


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VivianaHF2L
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Joined: Thu Sep 27, 2018 11:20 pm

The Difference between Q and Kc

Postby VivianaHF2L » Fri Jan 18, 2019 2:13 pm

What is the difference between the two, in terms of comparing them if they have the same formula? What does the comparison entail?

whitneyhawthorne_2C
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Joined: Thu Sep 27, 2018 11:28 pm

Re: The Difference between Q and Kc

Postby whitneyhawthorne_2C » Fri Jan 18, 2019 2:37 pm

Q is different from Kc because Kc indicates the ratio of products to reactants at equilibrium while Q indicates the ratio of products to reactants at any time during the reaction (such as when it has not yet reached equilibrium) we can then use Q to figure out which direction a reaction is sitting toward by comparing it to the reaction's Kc value.

Ariel Cheng 2I
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Joined: Thu Sep 27, 2018 11:29 pm

Re: The Difference between Q and Kc

Postby Ariel Cheng 2I » Fri Jan 18, 2019 4:10 pm

As said above, Q has the same formula as Kc but can be calculated at anytime, not just when a reaction is at equilibrium. To explain the comparison a little more, when Q < Kc, a forward reaction will be favored. This is because Q is calculated as [products] / [reactants]. If Q is smaller than Kc, we need to increase the concentration of products in order to bring it up to match Kc (equilibrium). If Q > Kc, the opposite will be true. If Q = Kc, then the reaction has already reached equilibrium.

Sophie Roberts 1E
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Joined: Thu Sep 27, 2018 11:17 pm

Re: The Difference between Q and Kc

Postby Sophie Roberts 1E » Wed Jan 23, 2019 11:44 am

We use Q to determine which way the reaction must proceed to reach equilibrium which can also help us in settling up our ICE boxes.

charlotte_jacobs_4I
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Re: The Difference between Q and Kc

Postby charlotte_jacobs_4I » Wed Jan 23, 2019 11:47 am

Q is the same equation as K, but Q is calculated at anytime during the reaction and compared to K. If K and Q match then the system is at equilibrium. If Q<K it moves towards the products, if Q>K it moves towards the reactants.

EllaBerry
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Joined: Thu Sep 27, 2018 11:29 pm

Re: The Difference between Q and Kc

Postby EllaBerry » Thu Jan 24, 2019 11:12 am

Q and K are both calculated in the same way. However, they are different in that Q can be calculated at any time during the reaction, while K is the value only at equilibrium. Therefore you can use Q in comparison to K to determine which way a reaction is "shifted" towards. If Q is less than K, the reactions lies to the right, or favors the products.

Katie_Duong_1D
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Joined: Thu Sep 27, 2018 11:27 pm

Re: The Difference between Q and Kc

Postby Katie_Duong_1D » Thu Jan 24, 2019 2:22 pm

Q is the reaction quotient. K is the equilibrium constant. Q can be calculated at anytime during the reaction, while k is only at equilibrium. If Q<K, then the reaction shifts right to reach equilibrium. If Q>K, then the reaction shifts left to reach equilibrium.

Hadji Yono-Cruz 2L
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Joined: Thu Sep 27, 2018 11:26 pm

Re: The Difference between Q and Kc

Postby Hadji Yono-Cruz 2L » Sun Feb 10, 2019 3:23 pm

Q and K are calculated the same way (products/reactants), but Q can be measured at any point of the reaction and K is only measured at equilibrium. If Q < K then the forward reaction is favored. If Q > K then the reverse reaction is favored.

Anna O 2C
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Joined: Thu Sep 27, 2018 11:19 pm

Re: The Difference between Q and Kc

Postby Anna O 2C » Sun Feb 10, 2019 10:36 pm

Kc is the value of Q taken only at equilibrium while Q is the same ratio but taken at anytime during the reaction, not specifically at equilibrium.

105085381
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Joined: Thu Sep 27, 2018 11:15 pm

Re: The Difference between Q and Kc

Postby 105085381 » Mon Feb 11, 2019 2:35 pm

Both Q and K are calculated using the same equations - Q can calculate a particular point of the reaction / K calculates the reaction at equilibrium!

Brian Hom 2F
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Joined: Thu Sep 27, 2018 11:24 pm

Re: The Difference between Q and Kc

Postby Brian Hom 2F » Mon Feb 11, 2019 3:12 pm

Q and Kc are both constants used to look at a reaction. Q deals with the the reaction not at equilibrium and it can tell what direction the reaction will proceed as it moves toward equilibrium. When Q>K, reaction favors reverse. When Q<K, reactions favors forward. Kc is the equilibrium constant and this value tells you the ratio between products to reactants.

PranitKumaran1F
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Joined: Thu Nov 08, 2018 12:17 am

Re: The Difference between Q and Kc

Postby PranitKumaran1F » Mon Feb 11, 2019 3:33 pm

K is the ratio of the products and reactants when the reaction is at equilibrium only, while Q is the ratio of the products and the reactants at any given point in the reaction.


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