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Q.(a) State Le Chatelier's principle. [1]

(b) For the equilibrium 2NOCl(g) <=> 2NO(g) + Cl2(g), the value of the equilibrium constant Kc is 3.75 x 10^-6 at 1069K. Calculate Kp for the reaction at this temperature? [2]
Meghalaya MboseMBOSE Meghalaya 11th Board 2022Subjective· 3mImportance★★★★★
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(a) Le Chatelier's principle: equilibrium shifts to oppose an applied change. (b) Using Kp = Kc(RT)^Δn with Δn = 1, Kp ≈ 3.29 × 10⁻⁴.

(a) Le Chatelier's principle:

If a system at equilibrium is subjected to a change in one of the factors that determines the equilibrium state (concentration, pressure, volume, or temperature), the system responds by shifting its position of equilibrium in the direction that tends to counteract (partially undo) the effect of that change, so as to restore a new equilibrium.

(b) Calculating Kp from Kc:

For the reaction 2NOCl(g)⇌2NO(g)+Cl2(g)2NOCl(g) \rightleftharpoons 2NO(g) + Cl_2(g):

Δng=(moles of gaseous products)−(moles of gaseous reactants)=(2+1)−2=1\Delta n_g = (\text{moles of gaseous products}) - (\text{moles of gaseous reactants}) = (2+1) - 2 = 1

The relation between Kp and Kc is:

Kp=Kc(RT)ΔnK_p = K_c(RT)^{\Delta n}

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