Question

How is a reversible chemical reaction at equilibrium affected by adding more reactants to this system,...

How is a reversible chemical reaction at equilibrium affected by adding more reactants to this system, removing products from the system, or changing the temperature of the system?
0 0
Add a comment Improve this question Transcribed image text
Answer #1

Le- Chatelieris froneiple: try t ystem i an euili bratid system t al ust itselt in such a mamntr so as amer so as t und the e

Add a comment
Know the answer?
Add Answer to:
How is a reversible chemical reaction at equilibrium affected by adding more reactants to this system,...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • 2. When is equilibrium established in a reversible reaction? 3. How does a system at equibbeium...

    2. When is equilibrium established in a reversible reaction? 3. How does a system at equibbeium respond to the addition of more reactant? 4. How does a system at equilibrium respond to the addition of more peoducr? 5. In Part C, we look at the following reaction Fe (ag)+SCN (ag) FeSCN (ag) Copyright C 2014 Peanon Edction, Inc 207 Laboratory Mansal for Genenal Orgonic, and Bological Chemny 208 a Write the equilibriam constant expression for the reaction if the equilibrium...

  • 1. When a reaction system reaches chemical equilibrium......... a. What happens to the rates of the...

    1. When a reaction system reaches chemical equilibrium......... a. What happens to the rates of the forward and reverse reactions? b. What happens to the amounts of reactants and products? 2. For the exothermic reversible reaction below at equilibrium: 2 H2(g)+O2(g) <--> 2 H2O(g) a. How would the amount of O2 change when H2 is added to the reaction mixture? b. How would the amount of H2 change when H2O is added to the reaction mixture? c. How would the...

  • For a chemical system that is in dynamic equilibrium with Kc = 0.50, which of the...

    For a chemical system that is in dynamic equilibrium with Kc = 0.50, which of the following statements is FALSE? The rate of conversion of reactants to products is the same as the rate of conversion of products to reactants From the perspective of the forward reaction, the reaction mixture at equilibrium lies in favor of the products Both reactants and products are present in the reaction mixture The composition of the reaction mixture does not change with time The...

  • In order for a reaction to reach equilibrium, there must be reversible steps between the reactants...

    In order for a reaction to reach equilibrium, there must be reversible steps between the reactants and the products. A classical reversible reaction is the phosgene reaction. The proposed mechanism has three reversible steps: Derive the rate law for this reaction in the steady state approximation. When the rate law is obtained. Examine it under conditions of equilibrium (rate = 0). Observe the relationship between the rate constants and another obvious quantity.

  • For a chemical system that is in dynamic equilibrium with Kc = 0.50, which of the...

    For a chemical system that is in dynamic equilibrium with Kc = 0.50, which of the following statements is FALSE? Both reactants and products are present in the reaction mixture From the perspective of the forward reaction, the reaction mixture at equilibrium lies in favor of the products The composition of the reaction mixture does not change with time The rate of conversion of reactants to products is the same as the rate of conversion of products to reactants The...

  • Does the reaction favor reactants or products? reactants products neither products nor reactants The reversible decomposition...

    Does the reaction favor reactants or products? reactants products neither products nor reactants The reversible decomposition of dinitrogen tetroxide, N204, to nitrogen dioxide, NO2, is shown. For this reaction, = 0.15. Kea = N204 2 NO, nitrogen dioxide dinitrogen tetroxide At equilibrium, is the concentration of reactants or products greater? The concentration of products is greater than the concentration of reactants at equilibrium. The concentration of reactants equals the concentration of products at equilibrium. The concentration of reactants is greater...

  • For a chemical reaction at equilibrium, which of the following will change the value of the...

    For a chemical reaction at equilibrium, which of the following will change the value of the equilibrium constant K? I. changing the temperature Il. changing the total concentration of reactants and products IlI. changing the reaction coefficients O a. Ionly O b.ll only Oelll only I and Il only I and Il only A Moving to another question will save this response. MacBook Air

  • consider the following reversible reaction equation Consider the following reversible reaction equation: 2502(g) + O2(g) →...

    consider the following reversible reaction equation Consider the following reversible reaction equation: 2502(g) + O2(g) → 2503(9) Ka = 1.2 x 103 Complete the following sentences (a-e) by selecting the best choice from the dropdown menus. a) This is an example of a equilibrium. b) At equilibrium, this system will contain mostly c) If more SO2 is added to this system at equilibrium, the reaction will shift towards the d) If oxygen gas is removed from this system at equilibrium,...

  • Consider the general class of chemical reactions where A+B+ +C+D If the reaction is initially at...

    Consider the general class of chemical reactions where A+B+ +C+D If the reaction is initially at equilibrium, what happens when C is removed from the reaction mixture? O a. The equilibrium is not affected. Ob. The equilibrium shifts to the right and generates more products. Oc. The equilibrium shifts to the left and generates more reactants. QUESTION 11 Consider the general class of chemical reactions where A+B+ C+D If the reaction is initially at equilibrium, what happens when the reaction...

  • 4. For the following reaction, tell how the equilibrium yield of iron(III) trichloride is affected by......

    4. For the following reaction, tell how the equilibrium yield of iron(III) trichloride is affected by... 6C12(8) + 2Fe2O3(s) = 4FeCl3(s) + 302(8) (a) increasing Pa, (b) adding Fe20.. (c) selectively removing O2(e). (d) adding a catalyst. (e) removing part of the FeCl. (1) decreasing the total pressure.

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT