Ask Question
14 August, 01:45

At 1000 K, the equilibrium constant for the reaction 2NO (g) + Br2 (g) 2NOBr (g) is Kp = 0.013. Calculate Kp for the reverse reaction, 2NOBr (g) 2NO (g) + Br2 (g)

+1
Answers (1)
  1. 14 August, 02:05
    0
    Kp for the reverse reaction is 76.9

    Explanation:

    Step 1: Kp at 1000 K = 0.013

    Step 2: The balanced equation

    2NO (g) + Br2 (g) ⇆ 2NOBr (g)

    2NOBr (g) ⇆ 2NO (g) + Br2 (g)

    Step 3: Calculate Kp

    Kp for the reaction 2NO (g) + Br2 (g) ⇆ 2NOBr (g)

    Kp = p (NOBr) ² / (pBr2) * (pNO) ²

    Kp = 0.013

    Kp for the reverse reaction 2NOBr (g) ⇆ 2NO (g) + Br2 (g)

    Kp' = (pBr2) * (pNO) ² / p (NOBr) ²

    Kp' = 1/Kp = 1/0.013 = 76.9

    Kp for the reverse reaction is 76.9
Know the Answer?
Not Sure About the Answer?
Find an answer to your question 👍 “At 1000 K, the equilibrium constant for the reaction 2NO (g) + Br2 (g) 2NOBr (g) is Kp = 0.013. Calculate Kp for the reverse reaction, ...” in 📗 Chemistry if the answers seem to be not correct or there’s no answer. Try a smart search to find answers to similar questions.
Search for Other Answers