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TS EAMCET · Chemistry · Chemical Equilibrium

Consider the following reaction in a \(1 \mathrm{~L}\) closed vessel. \(\mathrm{N}_2+3 \mathrm{H}_2 \rightleftharpoons 2 \mathrm{NH}_3\) If all the species; \(\mathrm{N}_2, \mathrm{H}_2\) and \(\mathrm{NH}_3\) are in \(1 \mathrm{~mol}\) in the beginning of the reaction and equilibrium is attained after unreacted \(\mathrm{N}_2\) is \(0.7 \mathrm{~mol}\). What is the value of equilibrium constant?

  1. A 3600
  2. B 3657.14
  3. C 2657.14
  4. D 1828.57
Verified Solution

Answer & Solution

Correct Answer

(B) 3657.14

Step-by-step Solution

Detailed explanation

For the given reaction: \(\mathrm{N}_2+3 \mathrm{H}_2 \rightleftharpoons 2 \mathrm{NH}_3\) \(\begin{array}{llll}\text { Initial moles } & 1 & 1 & 1\end{array}\) At equilibrium \(1-x \quad 1-3 x \quad 2 x\) Given, \(1-x=0.7 \mathrm{~mol}\) \(\therefore \quad x=0.3 \mathrm{~mol}\)…