Question

In: Chemistry

1)Express the equilibrium constant for the following reaction. 20CH3Br (g) + 10Br2 (g) ⟺ 20CH2Br2 (g)...

1)Express the equilibrium constant for the following reaction.

20CH3Br (g) + 10Br2 (g) ⟺ 20CH2Br2 (g) + 10H2 (g)

2)Find each in equilibrium constant expressions:

*6H2(g)+P4(g)⇌4PH3(g)

*CO(g)+Cl2(g)⇌COCl2(g)

3)Identify the change that will always shift the equilibrium to the right.

2SO2 (g) + O2 (g) ⇋ 2SO3 (g)

a)remove reactant
b)adding He
c)add Cu
d)remove product
e)increase the volume

Solutions

Expert Solution

According to the Le-Charterlier's principle,
(1) If the temperature is raised, reaction will proceed in the direction in which some heat can destroy (absorbed) so that temperature of the system remains constant.
Thus increase in temperature shifts the equilibrium in the forward direction of those reactions which proceed with absorption of heat (endothermic reactions), and in the back ward direction of those reactions which proceed with the evolution of heat (exothermic reactions)
(2) If the pressure is increased, reaction will takes place in a direction which will bring about lowering f pressure. This implies that the equilibrium will shifts in the direction which produces the smaller no. of gas molecules.
(3) If the concentration of reactants is increased or product is removed , the reaction will take place in the forward direction. If the concentration of reactants decreases or increasing the concentration of products the reaction will take place in the backward direction.
(4) Catalyst speeds up both forward & backward reactions to the same extent but does not have any effect on Equilibrium point.
(5)---> When the no. of moles of reactants & products are same the addition of inert gas has no effect
----> for a reaction at constant pressure ,addition of an inert gas will shifts the equilibrium in the direction in
which there is increase in the no . of moles of the gases


Related Solutions

Express the equilibrium constant for the following reaction. 10PCl5(g) ↔ 10PCl3(g) + 10Cl2(g)
Express the equilibrium constant for the following reaction. 10PCl5(g) ↔ 10PCl3(g) + 10Cl2(g)
Express the equilibrium constant for the following reaction. 5P4O10(s) ⇋  5P4(s) + 25O2(g)
Express the equilibrium constant for the following reaction. 5P4O10(s) ⇋  5P4(s) + 25O2(g)
Express the equilibrium constant for the following reaction. P4(s)+5O2(g)<>P4O10(s)
Express the equilibrium constant for the following reaction. P4(s)+5O2(g)<>P4O10(s)
1)The equilibrium constant, Kp, for the following reaction is 0.497 at 500 K: PCl5(g) The equilibrium...
1)The equilibrium constant, Kp, for the following reaction is 0.497 at 500 K: PCl5(g) The equilibrium constant, Kp, for the following reaction is 0.497 at 500 K: PCl5(g) <------ ------> PCl3(g) + Cl2(g) Calculate the equilibrium partial pressures of all species when PCl5(g) is introduced into an evacuated flask at a pressure of 1.14 atm at 500 K. PPCl5 = atm PPCl3 = atm PCl2 = atm 2) The equilibrium constant, Kp, for the following reaction is 55.6 at 698...
A.) The equilibrium constant for the reaction A(g) ⇌ B(g) is 102 . A reaction mixture...
A.) The equilibrium constant for the reaction A(g) ⇌ B(g) is 102 . A reaction mixture initially contains [A] = 18.6 M and [B] = 0.0 M. Which statement is true at equilibrium? The reaction mixture contains [A] = 18.4 M and [B] = 0.2 M. The reaction mixture contains [A] = 0.2 M and [B] = 18.4 M. The reaction mixture contains [A] = 1.0 M and [B] = 17.6 M. The reaction mixture contains [A] = 9.30 M...
1. Determine the equilibrium constant for the following reaction at (3.950x10^2) K. 2 A(g) + B2(g)...
1. Determine the equilibrium constant for the following reaction at (3.950x10^2) K. 2 A(g) + B2(g) → 2 AB(s)     ΔH° = -(2.2x10^2) kJ; ΔS° = -(3.988x10^2) J/K 2. A+ (aq) + BC3- (aq) à A(BC3)(s) ΔH° f = -64.4 kJ/mol For the above reaction ΔSsys is ________(positive or negative), and ΔG is __________ (positive or negative) and the reaction is _______________ (spontaneous or nonspontaneous) at 600K   3. Which of the following pairs of reactants will result in a spontaneous reaction...
1. The equilibrium constant, Kp, for the following reaction is 10.5 at 350 K: 2CH2Cl2(g) <--->CH4(g)...
1. The equilibrium constant, Kp, for the following reaction is 10.5 at 350 K: 2CH2Cl2(g) <--->CH4(g) + CCl4(g) Calculate the equilibrium partial pressures of all species when CH2Cl2(g) is introduced into an evacuated flask at a pressure of 0.865 atm at 350 K. PCH2Cl2 =____ atm PCH4 =____ atm PCCl4 =____ atm 2. The equilibrium constant, Kp, for the following reaction is 0.215 at 673 K: NH4I(s) <----> NH3(g) + HI(g) Calculate the equilibrium partial pressure of HI when 0.413...
1.The equilibrium constant, Kc, for the reaction A(g) + B(g)  AB(g) is 115 at 25...
1.The equilibrium constant, Kc, for the reaction A(g) + B(g)  AB(g) is 115 at 25 oC. If 1.580 x 10‐1 mol of A and 4.721 x 10‐5 mol of B are introduced into a 1.00 liter vessel at 25 oC, calculate the equilibrium concentration of all species. Show your work using an ICE table. 2. (a) This experiment is separated into parts I and II. What are the [Fe3+] and [SCN‐] before mixing in each part? (b) Briefly, explain...
Consider the following reaction with an equilibrium constant of 5.10 at 527oC. CO(g) + H2O(g) ⇌...
Consider the following reaction with an equilibrium constant of 5.10 at 527oC. CO(g) + H2O(g) ⇌ H2(g) + CO2(g) If [CO] = 0.150 M, [H2O] = 0.250 M, [H2] = 0.420 M, and [CO2] = 0.370 M, calculate Q. ? Consider the following reaction: 2SO2(g) + O2(g) ⇌ 2SO3(g) Which of the following would not result in a shift towards an increase in production of SO3?pick the correct answer? a)Increase in volume b)Decrease in volume c)Increase in the amount of...
Express the equilibrium constant for the combustion of ethanol in the balanced chemical equation. C2H5OH(g)+3O2(g)⇌2CO2(g)+3H2O(g) Express...
Express the equilibrium constant for the combustion of ethanol in the balanced chemical equation. C2H5OH(g)+3O2(g)⇌2CO2(g)+3H2O(g) Express the equilibrium constant for the combustion of ethanol in the balanced chemical equation. K=[CO2]2[C2H5OH][O2]3 K=[C2H5OH][O2][CO2][H2O] K=[CO2][H2O][C2H5OH][O2] K=[CO2]2[H2O]3[C2H5OH][O2]3
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT