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Q.Derive the relation between Kp and Kc for the equilibrium reaction N2(g) + 3H2(g) <=> 2NH3(g)

Telangana TsbieTelangana Board of Intermediate Education (Intermediate 1st Year) 2022Subjective· 4mImportance★★★★★
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Kp and Kc are related by Kp = Kc(RT)^Δn, where Δn is the change in the number of moles of gaseous species; for this reaction Δn = −2.

For a gaseous equilibrium, the equilibrium constant can be expressed either in terms of molar concentrations (Kc) or partial pressures (Kp). The two are connected through the ideal gas equation.

Step 1 — Ideal gas relation between pressure and concentration

For an ideal gas, PV = nRT, so P = (n/V)RT = CRT, where C = n/V is the molar concentration.

So for any species i in the mixture: p_i = [i]RT

Step 2 — Write Kp and Kc for the general reaction

For a general reaction aA(g) + bB(g) ⇌ cC(g) + dD(g):

Kp=pCc pDdpAa pBb,Kc=[C]c[D]d[A]a[B]bK_p = \dfrac{p_C^{c}\,p_D^{d}}{p_A^{a}\,p_B^{b}}, \qquad K_c = \dfrac{[C]^{c}[D]^{d}}{[A]^{a}[B]^{b}}

Step 3 — Substitute p_i = [i]RT into Kp

Kp=([C]RT)c([D]RT)d([A]RT)a([B]RT)b=[C]c[D]d[A]a[B]b×(RT)(c+d)−(a+b)K_p = \dfrac{([C]RT)^{c}([D]RT)^{d}}{([A]RT)^{a}([B]RT)^{b}} = \dfrac{[C]^{c}[D]^{d}}{[A]^{a}[B]^{b}} \times (RT)^{(c+d)-(a+b)}

Kp=Kc(RT)Δn,Δn=(moles of gaseous products)−(moles of gaseous reactants)K_p = K_c (RT)^{\Delta n}, \quad \Delta n = (\text{moles of gaseous products}) - (\text{moles of gaseous reactants})

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