Q.For the equilibrium, 2NOCl(g) ⇌ 2NO(g) + Cl2(g) the value of the equilibrium constant, Kc is 3.75 × 10⁻⁶ at 1069 K. Calculate the Kp for the reaction at this temperature?
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Start your 14-day free trial to unlock the full solution →The relationship connects the two equilibrium constants through
the change in moles of gas; here , so using bar L K
mol (this chapter's convention for pressure in bar), .
The NCERT textbook prints the final value as — an arithmetic slip: , as computed here. The method shown in the book is correct; only its final multiplication is off.
The equilibrium constant can be expressed in two ways: uses molar concentrations, while
uses partial pressures. For reactions involving gases, these two constants are related
but not identical unless the number of moles of gas remains unchanged. The bridge between
them comes from the ideal gas law.
When we write the ideal gas equation , we can rearrange it to , where is the molar concentration. This tells us that partial pressure and
concentration differ by a factor of . When we substitute this relationship into the
equilibrium expression, the factors don't all cancel — they combine to give us
, where is the change in the number of moles of gas.
where
Now let's apply this to the given reaction.
-
Identify the stoichiometry and calculate .
The balanced equation is:
On the product side: moles of gas
On the reactant side: moles of gas
Therefore, .
-
Gather the known values.
- — this chapter (§6.4.1) works in bar throughout, since pressure must be expressed in bar for 's standard state. …
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