Question

Consider the following reaction and its equilibrium constant: 12(g) + Br2(g) = 2 IBr(g) Kc = 1.1 x 102 A reaction mixture conI said that the answer was D because I got 83.3333 as the answer which would make Qc>Kc sending the equation to the right towards the products. Please explain why I am right or wrong and please provide the correct answer with an explanation if I am incorrect. Thank you

0 0
Add a comment Improve this question Transcribed image text
Answer #1

In + Bora - 2TB, Ket lixiosa Q = (IB2]? [I] [B] Q = (3.5)? - 83.33 = 8.3x10 · 49 X-30 80, we see that ack the Reaction will t

Add a comment
Know the answer?
Add Answer to:
I said that the answer was D because I got 83.3333 as the answer which would...
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
  • The reduction of NO by H2 has been studied for decades. If a flask contains 0.65...

    The reduction of NO by H2 has been studied for decades. If a flask contains 0.65 M nitrogen monoxide, 0.28 M water vapor, 0.31 M nitrogen gas, and 0.225 M hydrogen gas, compare the reaction quotient Qc to Kc and predict whether the reaction will shift towards products or reactants. 2 NO(g)+2H2(g) *) 2 H2O(g)+N2(g) Kc = 0.022 (a) (10 pts) Q value: (b) (5 pts) ○ It is impossible to make this prediction ○ Reaction is at equilibrium ○...

  • Consider the following reaction and its equilibrium constant 0.43 SO2(g) + NO (9) = SO.(g) + NO(g) K = 0.33 A reac...

    Consider the following reaction and its equilibrium constant 0.43 SO2(g) + NO (9) = SO.(g) + NO(g) K = 0.33 A reaction mixture contains 0.49 M SO. 0.14 M NO, 0.12 M SO, and 0.14 M NO. Which of the following statements is TRUE concerning this system? b. ooo The reaction will shift in the direction of reactants. The equilibrium constant will decrease. The reaction will shift in the direction of products. The reaction quotient will decrease. The system is...

  • Consider the following reaction and its equilibrium constant: 4 CuO(s) + CH4(g)  ⇌  CO2(g) + 4 Cu(s) +...

    Consider the following reaction and its equilibrium constant: 4 CuO(s) + CH4(g)  ⇌  CO2(g) + 4 Cu(s) + 2 H2O(g)         Kc = 1.10 A reaction mixture contains 0.38 M CH4, 0.96 M CO2 and 0.14 M H2O.  Which of the following statements is TRUE concerning this system? The system is at equilibrium. The reaction will shift in the direction of reactants. The reaction quotient will increase. The equilibrium constant will increase. The reaction will shift in the direction of products.

  • Please explain how you got the answer for this, for some reason I can not grasp...

    Please explain how you got the answer for this, for some reason I can not grasp how to choose from those answer choices... BUT I do know how to get the Qc... Thanks so much for your help and please explain as simply as possible For the reaction H2(g) + Br2(g)   2HBr(g), Kc = 81.4 at 385C. If [H2] = [Br2] = [HBr] = 2.4 10-4 M at 385C, which one of the following is correct? A. [H2] and [HBr]...

  • 27. Consider the following reaction and its equilibrium constant: SO2(g) + NO2(g) = SO3(g) + NO(g)...

    27. Consider the following reaction and its equilibrium constant: SO2(g) + NO2(g) = SO3(g) + NO(g) Kc = 0.33 A reaction mixture contains 0.41 M SO2, 0.13 M NO2.0.11 M SO3 and 0.13 M NO. Which of the following statements is TRUE concerning this system? A) The reaction will shift in the direction of reactants. B) The equilibrium constant will decrease. C) The reaction will shift in the direction of products. D) The reaction quotient will decrease. E) The system...

  • At equilibrium 12(g) + Br2(g) + 2 IBr(g), K = 1.2 x 102 The following concentrations...

    At equilibrium 12(g) + Br2(g) + 2 IBr(g), K = 1.2 x 102 The following concentrations were determined at a particular time: 12(g) = 0.310 mol/L, Br2(g) = 0.310 mol/L and IBr(g) = 2.00 mol/L Calculate Q, the reaction quotient, and by comparing to the K value state if the system is at equilibrium or which direction it will shift if it is not at equilibrium. [3]

  • Consider the following reaction and its equilibrium constant: SO2(g) + NO2(8) - SO3(g) + NO(g) Kc=0.33...

    Consider the following reaction and its equilibrium constant: SO2(g) + NO2(8) - SO3(g) + NO(g) Kc=0.33 A reaction mixture contains 1.0 mol L-1 SO2, 0.50 mol L-1 NO2,0.50 mol L-1 SO3, and 1.0 mol L-1 NO. Which of the following statements is TRUE concerning this system? A) The reaction will shift in the direction of reactants. B) The system is at equilibrium. C) The reaction quotient will decrease. D) The reaction will shift in the direction of products. E) The...

  • please help with these two questions QUESTION 2 Consider the following reaction and its equilibrium constant:...

    please help with these two questions QUESTION 2 Consider the following reaction and its equilibrium constant: SO2(g) + NO 2(0) SO 3(g) + NO(g) K c = 0.33 A reaction mixture contains 0.41 M SO 2, 0.13 M NO 2.0.11 M SO 3 and 0.13 M NO. Which of the following statements is TRUE concerning this system? The reaction quotient will decrease The reaction will shift in the direction of reactants. The reaction will shift in the direction of products,...

  • please explain how you got your answers Multiple Choice Please write your name as it appears...

    please explain how you got your answers Multiple Choice Please write your name as it appears on UAOnline. Each question is worth 5 points each. Identify the choice or fill in the blank that best completes the statement or answers the question. Always show your work! 1. Write out equilibrium constant expression (K) for the following reaction: Co (CO),(s) 2Co (aq) + 300, (aq) 2. Calculate K, for the following reaction given the equilibrium concentrations of IPCI: [PCG) = 1.2...

  • I NEED HELP WITH THIS PROBLEM SOMEONE HELP PLEASE!!! Consider the following reaction at equilibrium. What...

    I NEED HELP WITH THIS PROBLEM SOMEONE HELP PLEASE!!! Consider the following reaction at equilibrium. What effect will decreasing the temperature have on the system? CO2(g) + 2 H20(I) = CH4(g) + 2 - AH° - +890 kJ O2(g) No effect will be observed. The reaction will shift to the right in the direction of products. The equilibrium constant will increase. The reaction will shift to the left in the direction of reactants.

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