CHEMISTRY CHEMICAL EQUILBRIUM QUIZ-6
Dear Readers,
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Q1. When rain is accompanied by a thunderstorm the collected rain water will have a pH value:
Solution
c) Thunderstorm produces acidic oxides of N,S which produce acidic rain on dissolution in water.
c) Thunderstorm produces acidic oxides of N,S which produce acidic rain on dissolution in water.
Q2.What is the pH of a 1M CH3COONa solution? Ka of acetic acid =1.8×10-5,Kw=10-14 mol2 litre-2
Solution
d) CH3 COO-+H2 O⇌CH3 COOH+OH- ∴[OH-]=c∙h=c√([Kh/c] ) =√([Kw/Ka∙c] ) =√((10-14×1)/(1.8×10-5 ))=2.35×10-5 ∴ pOH=4.6289 ∴ pH=9.3710
d) CH3 COO-+H2 O⇌CH3 COOH+OH- ∴[OH-]=c∙h=c√([Kh/c] ) =√([Kw/Ka∙c] ) =√((10-14×1)/(1.8×10-5 ))=2.35×10-5 ∴ pOH=4.6289 ∴ pH=9.3710
Q3. Ammonia under a pressure of 15 atm at 27℃ is heated to 347℃ in a closed vessel in the presence of catalyst. Under the
conditions, NH3 is partially decomposed according to the equation, 2NH3⇌N2+3H2. The vessel is such that the volume remains effectively constant whereas pressure increases to 50 atm. Calculate the
percentage of NH3 actually decomposed
conditions, NH3 is partially decomposed according to the equation, 2NH3⇌N2+3H2. The vessel is such that the volume remains effectively constant whereas pressure increases to 50 atm. Calculate the
percentage of NH3 actually decomposed
Solution
a) 2NH3⇌N2+3H2 Initial moles a 0 0 At equilibrium(a-2x) x 3x Initial pressure of NH3 of ‘a’mole = 15 atm at 27℃. The pressure of ’a’ mole of NH3=p atm at 347℃ ∴15/300=p/620 ∴p=31 atm At constant volume and at 347℃, mole ∝ pressure a∝31 (before equilibrium) ∴(a-2x)∝50 (after equilibrium) ∴ ((a-2x))/a=50/31 ∴x=19/62 a ∴% of NH3 decomposed =2x/a×100 =(2×19a)/(62×a)×100 =61.33%
a) 2NH3⇌N2+3H2 Initial moles a 0 0 At equilibrium(a-2x) x 3x Initial pressure of NH3 of ‘a’mole = 15 atm at 27℃. The pressure of ’a’ mole of NH3=p atm at 347℃ ∴15/300=p/620 ∴p=31 atm At constant volume and at 347℃, mole ∝ pressure a∝31 (before equilibrium) ∴(a-2x)∝50 (after equilibrium) ∴ ((a-2x))/a=50/31 ∴x=19/62 a ∴% of NH3 decomposed =2x/a×100 =(2×19a)/(62×a)×100 =61.33%
Q4. In the equilibrium,2SO2 (g)+O2 (g) ⇌2SO3 (g), the partial pressure of SO2,O2 and SO3 are 0.662, 0.101 and 0.331 atm respectively. What should be the partial pressure of oxygen so that the equilibrium concentration of SO2 and SO3 are equal?
Solution
a) Kp=(pSO3 )2/((p(SO2 ) )2 (p(O2 ) ) )=(0.331)2/((0.662)2 (0.101))=2.5 Now, Kp=(p(SO3 ) )2/((pSO2 )2 PO2 );
If pSO3= p(SO2 ) Then, p(O2 )=1/Kp =1/2.5=0.4 atm
a) Kp=(pSO3 )2/((p(SO2 ) )2 (p(O2 ) ) )=(0.331)2/((0.662)2 (0.101))=2.5 Now, Kp=(p(SO3 ) )2/((pSO2 )2 PO2 );
If pSO3= p(SO2 ) Then, p(O2 )=1/Kp =1/2.5=0.4 atm
Q5.The exothermic formation of ClF3 is represented by the equation
Cl2 (g)+3F2 (g)⇌2ClF3 (g); ∆H=-329 kJ Which of the following will increase the quantity of ClF3 in an equilibrium mixture of Cl2,F2 and ClF3?
Cl2 (g)+3F2 (g)⇌2ClF3 (g); ∆H=-329 kJ Which of the following will increase the quantity of ClF3 in an equilibrium mixture of Cl2,F2 and ClF3?
Solution
a) Reaction is exothermic. By Le-Chatelier’s principle, a reaction is spontaneous in forward side (in the direction of formation of more ClF_3) if F_2 is added, temperature is lowered and ClF_3 is removed.
a) Reaction is exothermic. By Le-Chatelier’s principle, a reaction is spontaneous in forward side (in the direction of formation of more ClF_3) if F_2 is added, temperature is lowered and ClF_3 is removed.
Q6.In a lime kiln, to get higher yield of CO2, the measure that can be taken is
Solution
d) CaCO(s)⇌CaO(s)+CO2 (g) The equilibrium constant for this reaction is given by K=[CO2 ](as CaCO3 and CaO are solid). Hence, to get more CO2, we need to pump out continuously the CO2 gas.
d) CaCO(s)⇌CaO(s)+CO2 (g) The equilibrium constant for this reaction is given by K=[CO2 ](as CaCO3 and CaO are solid). Hence, to get more CO2, we need to pump out continuously the CO2 gas.
Q7.The dissociation equilibrium of a gas AB2 can be represented as:
2AB2 (g)⇌2AB(g)+B2 (g) The degree of dissociation is 'x' and is small compared to 1. The expression
relating the degree of dissociation (x) with equilibrium constant Kp and total pressure p is:
2AB2 (g)⇌2AB(g)+B2 (g) The degree of dissociation is 'x' and is small compared to 1. The expression
relating the degree of dissociation (x) with equilibrium constant Kp and total pressure p is:
Solution
a)
a)
Q8.The solubility of AgCl in water at 10℃ is 6.2×10-6 mol/litre. The Ksp of AgCl is:
Solution
d) Ksp for AgCl=s2.
d) Ksp for AgCl=s2.
Q9.The correct relationship between Kc and Kp in gaseous equilibrium is :
Solution
b) Kp=Kc x (RT)∆n. Where ∆n= mole of products – mole of reactants
b) Kp=Kc x (RT)∆n. Where ∆n= mole of products – mole of reactants
Q10. In a chemical equilibrium, the rate constant of the backward reaction is 7.5×10-4 and the equilibrium constant is 1.5. So, the rate constant of the forward reaction is
Solution
a)Kc=kf/kb ∴kf=Kc×kb=1.5×7.5×10-4=1.125×10-3
a)Kc=kf/kb ∴kf=Kc×kb=1.5×7.5×10-4=1.125×10-3