Question

Part A - Combining Equilibrium Expressions Given the equilibrium constants for the following two reactions in aqueous solution at 25°C HNO2 (aq) = H+(aq) + NO2 (aq) Kc = 4.5 x 10-4 H2SO3(aq) = 2H+(aq) + SO32- (aq) Kc = 1.1 x 10-9 what is the value of K, for the reaction 2HNO2 (aq) + SO32- (aq) = H2SO3(aq) + 2NO2 (aq) O 4.9 10-13 O 5.4 x 10-3 O 1.8 x 102 O O 4.1 x 105 8.2 x 105

Answer 1

Given reactions, Geachion 1: ANO,laq.) maq) + NO; (aq) K : 4.5 x 10-4 Reachion 2: H, 50, caq.) = 24*10q) + sog'-(09.) K = 1.1.210-1 To find, Peach'on 3: 2100,(09.) + 503-199.) = H2 50, (09.+2. M 0loq) Ke=? for reaction by law of mass achion K = [NO] [**] CHNO,) 4.5 X10-4 -0 for reaction 2, by law of mass action [n+7? £50,-) - [H₂ so] TX10- 9 0 for reaction 3, by law of mass action - Ke= [4,50] [No, j2 [503-) Chino 72 5? - If we square ear and divides the result by en we ger egn as a squaring ear we gee - [Najj? [n+j? Scanned with CamScanner [HNO, 72 = (4.5x10-y)? -

Dividing eqh 4 by can we get [NozJ? c Mys03] - 14.5x10-12 - © Isobn] [ HNOL] 2 1.1X10-9 Right hand side of egn @ and ean are same, hence [No ₂ ] ² [2₂ 50₃7 [s03_-] [lino, ga = 13.41x10 418 4X102) hence, correct option is © as ke for reaction & Trosx 10² Scanned with CamScanner
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