Equilibrium Multiple Choice

Size: px
Start display at page:

Download "Equilibrium Multiple Choice"

Transcription

1 Equilibrium Multiple Choice January Consider the following graph: When equilibrium is reached, the rate of the forward reaction is A mol/min B. 0.25mol/min C. 1.0 mol/min D. 3.0 mol/min 8. Consider the following equilibrium: 2NO 2 (g) N 2 O 4 (g) + energy The equilibrium will shift to the left as a result of A. adding a catalyst. B. increasing the volume. C. removing some N 2 O 4. D. decreasing the temperature. 9. Ethene, C 2 H 4, can be produced in the following industrial system: C 2 H 6 (g) + energy C 2 H 4 (g) + H 2 (g) The conditions that are necessary to maximize the equilibrium yield of C 2 H 4 are A. low temperature and low pressure. B. low temperature and high pressure. C. high temperature and low pressure. D. high temperature and high pressure.

2 10. Consider the following equilibrium: H 2 (g) + I 2 (g) 2HI (g) The volume of the equilibrium system is increased and a new equilibrium is established. Compared to the rates in the original equilibrium, which of the following describes the rates of the forward and reverse reactions in the new equilibrium? 11. Consider the following equilibrium: N 2 (g) + 3H 2 (g) 2NH 3 (g) + energy Certain conditions provide less than 10% yield of NH3 at equilibrium. Which of the following describes this equilibrium? 12. Which of the following best describes the relationship between K eq and temperature for an endothermic reaction?

3 April Consider the following PE diagram for a reversible reaction: Which of the following describes this reaction? 8. Consider the following equilibrium: 2NO (g) + Br 2(g) + energy The equilibrium will shift to the left as a result of 2NOBr (g) A. adding a catalyst. B. removing NOBr. C. increasing the volume. D. increasing the temperature. 9. Consider the following equilibrium: N 2(g) + O 2(g) + energy When the temperature is increased, the equilibrium shifts to the A. left and K eq increases. B. left and K eq decreases. C. right and K eq increases. D. right and K eq decreases. 2NO (g)

4 10. Consider the following equilibrium: 2CO (g) + O 2(g) 2CO 2 (g) + energy Some CO 2 is added to the equilibrium system at constant volume and a new equilibrium is established. Compared to the original equilibrium, the rates of the forward and reverse reactions for the new equilibrium have 11. An indication that an equilibrium system favours the products is a A. large K eq. B. positive H. C. one step mechanism. D. low activation energy. 12. The relationship between K eq and the pressure of a gaseous equilibrium at constant temperature can be described by 13. Consider the following equilibrium: 2NO 2(g) N 2 O 4(g) A 1.00 L flask contains mol NO 2 and mol N 2 O 4 at equilibrium. The value of K eq is A B C. 1.3 D. 44

5 June Consider the following reaction: N 2(g) + 3H 2(g) 2NH 3 (g) + energy Which of the following describes the changes in enthalpy and entropy as the reaction proceeds? 8. Consider the following equilibrium: 2SO 2(g) + O 2(g) 2SO 3(g) + energy Which of the following will cause this equilibrium to shift to the left? A. adding a catalyst B. adding some SO 2 C. increasing the volume D. decreasing the temperature 9. Methanol, CH 3 OH, can be produced by the following: CO (g) + 2H 2(g) CH 3 OH(g) + energy The conditions that are necessary to maximize the equilibrium yield of CH 3 OH are A. low temperature and low pressure. B. high temperature and low pressure. C. low temperature and high pressure. D. high temperature and high pressure. 10. A catalyst is added to a system already at equilibrium. How are the forward and reverse reaction rates affected by the addition of the catalyst?

6 11. Consider the following reaction: 2H 2(g) + O 2(g) 2H 2 O (l) What is the equilibrium constant expression for the reaction? A. Keq = [H 2 ] 2 [O 2 ] [H 2 ] 2 [O 2 ] B. Keq= [H 2 O] 2 [H 2 O] 2 C. Keq= [H 2 ] 2 [O 2 ] 1 D. Keq= [H 2 ] 2 [O 2 ] 12. The relationship between K eq and temperature for an exothermic reaction is represented by 13. Consider the following equilibrium: 2NOBr (g) 2NO (g) + Br 2(g) K eq = 6.4 X 10-2 At equilibrium, a 1.00 L flask contains mol NOBr and mol NO. How many mol Br 2 are present? A mol B mol C mol D mol

7 August At different conditions, the relationship between the forward and reverse rates of reaction in an equilibrium system can be represented by 8. Consider the following equilibrium: 4NH 3(g) + 5O 2(g) 4NO (g) + 6H 2 O (g) + energy Which of the following will cause the equilibrium to shift to the left? A. adding H 2 O (g) B. removing some NO (g) C. increasing the volume D. decreasing the temperature 9. Consider the following equilibrium: 2NO (g) + O 2(g) 2NO 2 (g) + energy When the volume of the container is increased, the equilibrium shifts to the A. left and K eq decreases. B. right and K eq increases. C. left and Keq remains constant. D. right and Keq remains constant.

8 10. Consider the following equilibrium: 4HCl (g) + O 2(g) 2H 2 O (g) + 2Cl 2 (g) + energy The temperature of the equilibrium system is increased and a new equilibrium is established. The rates of the forward and reverse reactions for the new equilibrium compared to the original equilibrium have 11. Consider the following reaction: 2Hg (g) + O 2(g) 2HgO (s) The equilibrium constant expression for the reaction is 12. The value of Keq changes when A. a catalyst is added. B. the temperature changes. C. the surface area changes. D. the concentration of reactants changes. 13. Consider the following equilibrium: PCl 5(g) PCl 3(g) + Cl 2(g) A 1.00 L flask contains mol PCl 5, mol PCl 3 and mol Cl 2 at equilibrium. The value of K eq is A B C D. 8.00

9 January Consider the following equilibrium: N 2(g) + 2O 2(g) 2NO 2(g) Equal moles of N 2 and O 2 are added, under certain conditions, to a closed container. Which of the following describes the changes in the reverse reaction which occur as the system proceeds toward equilibrium? 8. A chemical equilibrium is described as dynamic because A. maximum randomness has been achieved. B. the pressure and temperature do not change. C. both reactants and products continue to form. D. the concentrations of chemical species remain constant. 9. Which of the following reactions results in an entropy increase? A. 2C (s) + O 2(g) 2CO (g) B. N 2(g) + 2H 2(g) N 2 H 4(l) C. 2SO 2(g) + O 2(g) 2SO 3(g) D. Ag + (aq) + Cl - (aq) AgCl (s) 10. Consider the following equilibrium: CH 3 COOH (aq) + H 2 O (l) CH 3 COO - (aq) + H 3 O + (aq) + heat A stress was applied at time t 1 and the data was plotted on the following graph: The stress that was imposed at time t 1 is the result of A. the addition of HCl. B. decreasing the temperature. C. the addition of NaCH 3 COO. D. increasing the volume of the container.

10 11. Consider the following potential energy diagram for an equilibrium system: When the temperature of the system is increased, the equilibrium shifts to the A. left and the K eq increases. B. left and the K eq decreases. C. right and the K eq increases. D. right and the K eq decreases. 12. What is the Keq expression for the following equilibrium? 3Fe (s) + 4H 2 O (g) Fe 3 O 4(s) + 4H 2(g) 13. Consider the following equilibrium: 2O 3(g) 3O 2(g) Keq= 65 Initially, 0.10 mole of O 3 and 0.10 mole of O 2 are placed in a 1.0L container. Which of the following describes the changes in concentrations as the reaction proceeds toward equilibrium?

11 April Which of the following applies to a chemical equilibrium? I. Forward and reverse reaction rates are equal II. Equilibrium can be achieved from either direction III. Macroscopic properties are constant A. I only B. I and II only C. II and III only D. I, II and III 8. In which of the following will the driving forces of minimum enthalpy and maximum entropy oppose one another? A. 2C (s) + O 2(g) 2CO (g) H= -221kJ B. 2N 2(g) + O 2(g) 2N 2 O (g) H= +164kJ C. 2CO (g) + O 2(g) 2CO 2(g) H= -566kJ D. 2CO 2(g) + 6H 2 O (g) 2C 2 H 6(g) + 7O 2(g) H= +3122kJ 9. Consider the following equilibrium: 2CrO 2-4 (aq) + 2H 3 O + (aq) (yellow) Cr 2 O 2-7 (aq) + 3H 2 O (l) (orange) An unknown solution is added to an orange equilibrium sample until the sample turns yellow. The unknown solution could be A. KNO 3 B. NaOH C. NH 4 NO 3 D. CH 3 COOH 10. Ammonia, NH 3, is produced by the following reaction: N 2(g) + 3H 2(g) 2NH 3(g) + energy Which of the following would result in the highest concentration of ammonia at equilibrium? A. increasing the temperature and increasing the pressure B. decreasing the temperature and increasing the pressure C. increasing the temperature and decreasing the pressure D. decreasing the temperature and decreasing the pressure

12 11. What is the Keq expression for the following reaction? SnO 2(s) + 2CO (g) Sn (s) + 2CO 2(g) 12. Consider the following reaction: C (s) + 2H 2(g) CH 4(g) H = -74.8KJ Which of the following will cause an increase in the value of Keq? A. increasing [H 2 ] B. decreasing the volume C. finely powdering the C (s) D. decreasing the temperature 13. Consider the following equilibrium: H 2(g) + I 2(g) 2HI (g) At equilibrium [H 2 ] = mol/l, [I 2 ] = mol/l and [HI] = mol/L. The value of Keq is A X 10-4 B X 10-2 C X 10 1 D X 10 3 June Consider the following equilibrium: 2NOCl (g) 2NO (g) + Cl 2(g) A flask of fixed volume is initially filled with NOCl (g), NO (g) and Cl 2(g). When equilibrium is reached, the pressure has increased. To reach equilibrium, the reaction proceeded to the A. left because Trial K eq was less than Keq. B. right because Trial K eq was less than K eq. C. left because Trial K eq was greater than Keq. D. right because Trial K eq was greater than Keq.

13 8. In which of the following do both minimum enthalpy and maximum entropy factors favour the reactants? A. Cl 2(g) Cl 2(aq) H = -25 kj B. C (s) + H 2 O (l) CO (g) + H 2(g) H = +131kJ C. 2CO 2(g) + 3H 2 O (g) C 2 H 5 OH (l) + 3O 2 H = +1239kJ D. Na 2 CO 3(s) + HCl (aq) 2NaCl (aq) + CO 2(g) + H 2 O (l) H = -28kJ 9. Consider the following equilibrium: H 2 (g) + I 2(g) 2HI (g) Which graph represents what happens when some HI is removed and a new equilibrium is established? 10. Consider the following equilibrium: CO (g) + H 2 O (g) CO 2(g) + H 2(g) H= -41kJ What will cause a shift in the equilibrium? A. adding a catalyst B. changing volume C. adding an inert gas D. changing temperature 11. The equilibrium expression for a reaction is [H + ] 6 Keq = [Bi 3+ ] 2 [H 2 S] 3 The reaction could be A. 6H + + BiS (s) 2Bi 3+ (aq) + 3H 2 S (g) B. 6H + (aq) + Bi 2 S 3 (s) 2Bi 3+ (aq) + 3H 2 S (g) C. 2Bi 3+ (aq) + 3H 2 S (aq) Bi 2 S 3(s) + 6H + (aq) D. 2Bi 3+ (aq) + 3H 2 S (aq) Bi 2 S 3 (aq) + 6H + (aq)

14 12. Consider the following equilibrium: Co(H 2 O) 2+ 6 (aq) + 4Cl - 2- CoCl 4 (aq) + 6H 2 O (l) (pink) (blue) When the temperature is increased, the solution turns a dark blue. Based on this observation, the reaction is A. exothermic and the Keq has increased. B. exothermic and the Keq has decreased. C. endothermic and the Keq has increased. D. endothermic and the Keq has decreased. 13. Consider the following equilibrium: 2O 3(g) 3O 2(g) Keq = 36 What is the concentration of O 3 when the equilibrium concentration Of O 2 is 6.0 X 10-2 mol/l? A. 2.4 X 10-3 mol/l B. 4.0 X 10-2 mol/l C. 6.0 X 10-2 mo/l D. 9.0 X 10-2 mol/l August Which of the following does not apply to all chemical equilibrium systems? A. They are closed. B. The macroscopic properties are constant. C. Forward and reverse reaction rates are equal. D. There are equal concentrations of reactants and products. 8. Consider the following equilibrium: 2NOCl (g) 2NO (g) + Cl 2(g) A flask is filled with NOCl, NO and Cl 2. Initially there was a total of 5.0 moles of gases present. When equilibrium is reached, there is a total of 6.0 moles of gases present. Which of the following explains this observation? A. The reaction proceeded left because the Trial Keq > Keq B. The reaction proceeded left because the Trial Keq < Keq C. The reaction proceeded right because the Trial Keq > Keq D. The reaction proceeded right because the Trial Keq < Keq

15 9. Consider the following reaction: C 3 H 8 (g) + 5O 2(g) 3CO 2(g) + 4H 2 O (g) Which of the following applies to the forward reaction? H = -2202kJ Entropy Enthalpy A. increases increases B. increases decreases C. decreases increases D. decreases decreases 10. Consider the following equilibrium: 2NO 2(g) N 2 O 4 (g) + energy The number of moles of NO 2 at equilibrium could be increased by A. adding N 2 O 4 B. adding a catalyst. C. decreasing the temperature. D. decreasing the volume by increasing the pressure. 11. What is the Keq expression for Sb 3+ (aq) + Cl - (aq) + H 2 O (l) SbOCl (s) + 2H + (aq) 12. Consider the following equilibrium: H 2 (g) + I 2(g) 2HI (g) Keq = 50.0 What is the value Keq for the reaction rewritten as: 2HI (g) H 2(g) + I 2(g) Keq =? A B C D. 50.0

16 13. Consider the following equilibrium: 2NO 2(g) N 2 O 4 (g) Keq = 1.15 The equilibrium concentration of NO 2 is 0.50 mol/l. Calculate the equilibrium Concentration of N 2 O 4 (g). A mol/l B mol/l C mol/l D mol/l January All chemical equilibriums have: I. rates that are continuing to change II. an equilibrium constant expression III. equal concentrations of products and reactants A. II only B. III only C. I and II only D. I and III only 8. From the following, select the situation where both enthalpy and entropy favour the reaction toward products: Enthalpy Entropy A. increasing increasing B. increasing decreasing C. decreasing decreasing D. decreasing increasing 9. Consider the following equilibrium: 2NO (g) + Br 2(g) 2NOBr (g) + energy The equilibrium will shift to the left as a result of A. adding a catalyst. B. adding some NO (g). C. increasing the volume. D. decreasing the temperature.

17 10. Consider the following equilibrium: PCl 3(g) + 3NH 3(g) P(NH 2 ) 3 (g) + 3HCl (g) The volume of the equilibrium system is increased and a new equilibrium is established. How have the rates been affected? Rate (forward) Rate (reverse) A. increased decreased B. decreased increased C. decreased decreased D. did not change did not change 11. Starting with equal moles of reactants, which of the following equilibrium systems most favours the reactants? A. SO 2(g) + NO 2(g) SO 3 (g) + NO (g) Keq= 3.4 B. CO (g) + H 2 O (g) CO 2(g) + H 2(g) Keq= 31.4 C. H 2(g) + I 2(g) 2HI (g) Keq= 10 D. N 2 (g) + O 2(g) 2NO (g) Keq= 1.0X Consider the following equilibrium reaction: N 2 O 4(g) 2NO 2(g) At time t 1, heat is applied to the system. Which of the following best describes the equilibrium reaction and the change in Keq? A. exothermic and Keq increases B. exothermic and Keq decreases C. endothermic and Keq increases D. endothermic and Keq decreases

18 13. Consider the following: PCl 3(g) + Cl 2(g) PCl 5(g) Keq = 0.45 at 227 C Initially, a 1.00L flask is filled with 0.100mol PCl 3, 0.100mol Cl 2, and 0.100mol PCl 5 at 227 C. Use K Trial to predict the change in [Cl 2 ] as equilibrium is established. April Consider the following equilibrium reaction: 2ICl (g) I 2(g) + Cl 2(g) Some ICl is added to an empty flask. How do the reaction rates change as the system approaches equilibrium? Forward rate Reverse rate A. increases increases B. increases decreases C. decreases increases D. decreases decreases 8. In an equilibrium system, continuing microscopic changes indicate that the equilibrium is A. dynamic. B. complete. C. exothermic. D. spontaneous. 9. Consider the following equilibrium: 4CuO (s) + energy The equilibrium will shift to the right as a result of 2Cu 2 O (s) + O 2(g) A. adding CuO (s). B. removing O 2 (g). C. adding a catalyst. D. decreasing the temperature.

19 10. Consider the following equilibrium: N 2(g) + 3H 2(g) 2NH 3(g) The volume of the system is decreased. The equilibrium shifts A. left since the reverse rate is greater than the forward rate. B. left since the forward rate is greater than the reverse rate. C. right since the reverse rate is greater than the forward rate. D. right since the forward rate is greater than the reverse rate. 11. Consider the following equilibrium: 2SO 3(g) 2SO 2(g) + O 2(g) Η = +198kJ When the temperature is increased, the equilibrium will shift A. left with Keq becoming larger. B. right with Keq becoming larger. C. left with Keq becoming smaller. D. right with Keq becoming smaller. 12. Starting with equal concentrations of reactants, which of the following will be closest to completion at equilibrium? A. CO (g) + Cl 2(g) COCl 2(g) Keq=22 B. PCl 3(g) + Cl 2(g) PCl 5(g) Keq= 2.9 X 10-2 C. CO (g) + Cl 2(g) COCl 2(g) Keq=4.5 X 10 9 D. CH 3 O 2 (g) + NO 2(g) CH 3 O 2 NO 2(g) Keq=2.1 X Consider the following equilibrium: 2COF 2(g) CO 2(g) + CF 4(g) At equilibrium, a 1.00L container contains 7.07 X 10-4 mol COF 2, 1.00 X 10-3 mol CO 2, and 1.00 X 10-3 mol CF 4. What is the value of Keq? A X 10-4 B X 10-3 C D. 2.00

20 June Consider the following reaction: 2ICl (g) I 2(g) + Cl 2(g) A closed container is initially filled with ICl (g). What are the changes in the rate of the forward reaction and [I 2 ], as the system approaches equilibrium? 8. The entropy of a system is a term used to describe A. randomness. B. heat content. C. average kinetic energy. D. stored chemical energy. 9. Consider the following equilibrium: Cu 2+ (aq) + 4Br - (aq) + energy CuBr 2-4 (aq) Blue colourless green Which of the following will cause this equilibrium to change from blue to green? A. adding NaBr (s) B. adding NaNO 3 (s) C. adding a catalyst D. decreasing the temperature 10. Consider the following equilibrium: Ni (s) + 4CO (g) Ni(CO) 2(l) Η = 160.8kJ Which of the following will cause this equilibrium to shift to the left? A. add some CO B. decrease the volume C. remove some Ni(CO) 4 D. increase the temperature

21 11. Consider the following equilibrium: N 2 O 4(g) + energy 2NO 2(g) Which of the following shows the relationship between concentration and time as a result of adding a catalyst at time t = 1? 12. Consider the following equilibrium: H 2 S (g) + I 2(g) 2HI (g) + S (s) What is the equilibrium expression for this reaction? [HI] 2 A Keq= [H 2 S] [H 2 S] B. Keq= [HI] 2 [HI] 2 [S] C. Keq= [H 2 S]P[I 2 ] [H 2 S]P[I 2 ] D. Keq= [HI] 2 [S] 13. Consider the following equilibrium: CO (g) + H 2 O (g) CO 2(g) + H 2(g) Keq = 5.0 At equilibrium, the [CO]= 0.20mol/L, [H 2 O]= 0.30mol/L, and [H 2 ]= 0.90mol/L. Calculate the equilibrium [CO 2 ]. A mol/l C mol/l B mol/l D. 1.0mol/L

22 14. Consider the following: CO 2(g) + CF 4(g) 2COF 2(g) Keq= 0.50 In a reaction container the initial concentrations are: [CO 2 ]= 0.50mol/L, [CF 4 ]= 0.50mol/L, [COF 2 ]= 0.30 mol/l To reach equilibrium, the reaction will proceed A. left since Trial Keq < K eq B. left since Trial Keq > K eq C. right since Trial Keq < K eq D. right since Trial Keq > K eq August All chemical equilibriums must have A. Keq = 1 B. [reactants]=[products]. C. rate forward = rate reverse. D. mass of reactants = mass of products. 8. Consider the following equilibrium reaction: 4HCl (g) + O 2(g) 2H 2 O (g) + 2Cl 2(g) kJ For the forward reaction, how do enthalpy and entropy change? Enthalpy Entropy A. increases decreases B. decreases decreases C. increases increases D. decreases increases 9. Consider the following equilibrium: CH 3 Cl (aq) + OH - (aq) CH 3 OH (aq) + Cl - (aq) The equilibrium will shift to the left as a result of the addition of A. HNO 3 B. KNO 3 C. NaOH D. CH 3 Cl

23 10. Consider the following equilibrium at 25 C : For this reaction A. Keq = [CO] 4 1 B. Keq= [CO] 4 Ni (s) + 4CO (g) Ni(CO) 4(l) [Ni(CO) 4(l) ] C. Keq= [CO] 4 [Ni] [Ni(CO) 4(l) ] D. Keq= [CO] Consider the following equilibrium: 2COF 2(g) CO 2(g) + CF 4(g) Keq=2.00 At equilibrium, [CO 2 ]=0.050mol/L and [CF 4 ]=0.050mol/L. What t is [COF 2 ] at equilibrium? A mol/l B mol/l C mol/l D mol/l 12. Consider the following equilibrium: H 2 O (g) + Cl 2 O (g) 2HOCl (g) Keq= Initially, a 1.00L flask is filled with 0.100mol of H 2 O, 0.100mol of Cl 2 O and 0.100mol of HOCl. As equilibrium is established, the reaction proceeds to the A. left because K Trial > K eq B. left because K Trial < K eq C. right because K Trial > K eq D. right because K Trial < K eq

24 January Consider the following: 2SO 2(g) + O 2(g) 2SO 3(g) Initially, SO 3 is added to an empty flask. How do the rate of the forward reaction and [SO 3 ] change as the system proceeds to equilibrium? 8. Consider the following reaction: N 2(g) + 3H 2(g) 2NH 3(g) + energy What positions do minimum enthalpy and maximum entropy tend toward? Use the following equilibrium equation to answer questions 9 and 10. CO 2(g) + H 2(g) H 2 O (g) + CO (g) 9. Which two stresses will each cause the equilibrium to shift to the left? A. increase [H 2 ], increase [CO] B. decrease [H 2 ], increase [H 2 O] C. increase [CO 2 ], decrease [CO] D. decrease [CO 2 ], decrease [H 2 O]

25 10. Which of the following graphs represents the forward rate of reaction when H 2 O (g) is added to the above equilibrium at time t = 1? 11. Consider the following: 2NH 3 (g) N 2(g) + 3H 2(g) Initially, some NH 3 is placed into a 1.0L container. At equilibrium there is 0.030mol N 2 present. What is the [H 2 ] at this equilibrium? A mol/l B mol/l C mol/l D mol/l 12. Which reaction has the following equilibrium expression? [NO 2 ] 4 [H 2 O] 6 Keq= [NH 3 ] 4 [O 2 ] 7 A. 4NH 3(g) + 7O 2(g) 4NO 2(g) + 6H 2 O (g) B. 4NH 3(aq) + 7O 2(g) 4NO 2(aq) + 6H 2 O (l) C. 4NO 2(aq) + 6H 2 O (l) 4NH 3(g) + 7O 2(g) D. 4NO 2(g) + 6H 2 O (g) 4NH 3(g) + 7O 2(g) 13. What will cause the Keq for an exothermic reaction to increase? A. increasing [reactants] B. decreasing [products] C. increasing the temperature D. decreasing the temperature

26 April Consider the following: H 2(g) + I 2(g) 2HI (g) Initially, HI is added to an empty flask. How do the rates of the forward and reverse reactions change as the system proceeds to equilibrium? 8. Consider the following reaction: 2H 2 O (l) + energy 2H 2 (g) + O 2(g) Determine the enthalpy and entropy changes for the above reaction? Use the following equilibrium equation to answer questions 9 and 10. 2CO (g) + O 2(g) 2CO 2(g) + energy 9. Which of the following two stresses will each cause the system to shift to the right? A. increase temperature, increase volume B. decrease temperature, increase volume C. increase temperature, decrease volume D. decrease temperature, decrease volume

27 10. Which of the following shows the forward rate of reaction when the temperature of the system is increased at time t = 1? 11. Consider the following: 2SO 2(g) + O 2(g) 2SO 3(g) Initially, 0.030mol SO 2 and 0.030mol O 2 are placed into a 1.0L container. At equilibrium, there is mol O 2 present. What is the [SO 2 ] at equilibrium? A mol/l B mol/l C mol/l D mol/l 12. What is the equilibrium expression for the following system? CaCO3 (s) + 2HF (g) CaF 2(s) + H 2 O (g) + CO 2(g) [HF] 2 [H 2 O][CO 2 ] A. Keq= C. Keq= [H 2 O][CO 2 ] [CaCO 3 ][HF] 2 [H 2 O][CO 2 ] [CaF2] [H 2 O][CO 2 ] B. Keq= D. Keq= [HF] 2 [CaCO 3 ][HF] What will cause the K eq for an endothermic reaction to decrease? A. adding a catalyst B. increasing the surface area C. increasing the temperature D. decreasing the temperature

28 Answer Key Jan 99 Apr 99 Jun 99 Aug 99 7 C 7 D 7 C 7 A 8 B 8 C 8 C 8 A 9 C 9 C 9 C 9 C 10 A 10 A 10 A 10 A 11 D 11 A 11 D 11 A 12 C 12 D 12 A 12 B 13 C 13 D 13 B 13 A Jan 00 Apr 00 Jun 00 Aug 00 7 A 7 D 7 B 7 D 8 C 8 C 8 C 8 D 9 A 9 B 9 B 9 B 10 C 10 B 10 D 10 A 11 B 11 B 11 C 11 A 12 C 12 D 12 C 12 B 13 B 13 C 13 A 13 B Jan 01 Apr 01 Jun 01 Aug 01 7 A 7 C 7 A 7 C 8 D 8 A 8 A 8 B 9 C 9 B 9 A 9 A 10 C 10 D 10 D 10 B 11 D 11 B 11 C 11 B 12 C 12 A 12 A 12 A 13 A 13 D 13 C 14 C Jan 02 Apr 02 7 D 7 B 8 D 8 C 9 B 9 D 10 C 10 B 11 D 11 A 12 A 12 B 13 D 13 D

DYNAMIC EQUILIBRIUM STUDY GUIDE multiple choice

DYNAMIC EQUILIBRIUM STUDY GUIDE multiple choice DYNAMIC EQUILIBRIUM STUDY GUIDE multiple choice Multiple Choice Section: This study guide is a compilation of questions from provincial exams since April 1994. I urge you to become intimately familiar

More information

Chemistry 12 Provincial Workbook Unit 02: Chemical Equilibrium. Multiple Choice Questions

Chemistry 12 Provincial Workbook Unit 02: Chemical Equilibrium. Multiple Choice Questions R. Janssen, MSEC Chemistry 1 Provincial Workbook (Unit 0), P. 1 / 63 Chemistry 1 Provincial Workbook Unit 0: Chemical Equilibrium 1. Consider the following... Multiple Choice Questions Which of the following

More information

Chemistry 12: Dynamic Equilibrium Practice Test

Chemistry 12: Dynamic Equilibrium Practice Test Chemistry 12: Dynamic Equilibrium Practice Test A. Multiple Choice: For each question, select the best answer and record your choice on the answer key provided. /25 1) A system at equilibrium is said to

More information

UNIT II - REVIEW EQUILIBRIA. Part I - Multiple Choice. 1. In which of the following does the entropy decrease?

UNIT II - REVIEW EQUILIBRIA. Part I - Multiple Choice. 1. In which of the following does the entropy decrease? CHEMISTRY 12 UNIT II - REVIEW EQUILIBRIA Part I - Multiple Choice 1. In which of the following does the entropy decrease? A. NaCl (s) Na + (aq) + Cl (aq) B. 4 NO (g) + 6 H 2 O (g) 4 NH 3 (g) + 5 O 2 (g)

More information

Equilibrium Written Response

Equilibrium Written Response Equilibrium Written Response January 1998 2. Consider the following equilibrium: CS2 (g) + 3Cl2 (g) CCl4 (g) + S2Cl2 (g) ΔH = -238 kj a) Sketch a potential energy diagram for the reaction above and label

More information

CHEMISTRY 12 UNIT II EQUILIBRIUM D Learning Goals

CHEMISTRY 12 UNIT II EQUILIBRIUM D Learning Goals CHEMISTRY 12 UNIT II EQUILIBRIUM D Learning Goals 1. Chemical equilibrium is said to by dynamic because a. The reaction proceeds quickly b. The mass of the reactants is decreasing c. The macroscopic properties

More information

Equilibrium Written Response

Equilibrium Written Response Equilibrium Written Response January 1998 2. Consider the following equilibrium: CS2 (g) + 3Cl2 (g) CCl4 (g) + S2Cl2 (g) H = -238 kj a) Sketch a potential energy diagram for the reaction above and label

More information

Reaction Kinetics Multiple Choice

Reaction Kinetics Multiple Choice Reaction Kinetics Multiple Choice January 1999 1. Consider the reaction: Ca (s) + 2H 2 O (l) Ca(OH) 2 (aq) + H 2 (g) At a certain temperature, 2.50 g Ca reacts completely in 30.0 seconds. The rate of consumption

More information

Unit 2 Pre-Test Reaction Equilibrium

Unit 2 Pre-Test Reaction Equilibrium Unit 2 Pre-Test Reaction Equilibrium Multiple Choice Identify the choice that best completes the statement or answers the question. 1. Consider the following equilibrium system: 2HF(g) F 2(g) + H 2 (g)

More information

Entropy and Enthalpy Guided Notes. a) Entropy. b) Enthalpy. c ) Spontaneous. d) Non-spontaneous

Entropy and Enthalpy Guided Notes. a) Entropy. b) Enthalpy. c ) Spontaneous. d) Non-spontaneous Entropy and Enthalpy Guided Notes 1) Define a) Entropy b) Enthalpy c ) Spontaneous d) Non-spontaneous 2) There is a natural tendency for reaction to move to the side with enthalpy Minimum enthalpy is the

More information

Which of the following factors will not alter the position of equilibrium?

Which of the following factors will not alter the position of equilibrium? 86 N( g) + 3H $ ( g) NH3 ( g) Which of the following factors will not alter the position of uilibrium? A a pressure decrease B a temperature increase C the presence of a catalyst D the addition of more

More information

CHEMICAL EQUILIBRIUM. I. Multiple Choice 15 marks. 1. Reactions that can proceed in both the forward and reverse directions are said to be:

CHEMICAL EQUILIBRIUM. I. Multiple Choice 15 marks. 1. Reactions that can proceed in both the forward and reverse directions are said to be: Name: Unit Test CHEMICAL EQUILIBRIUM Date: _ 50 marks total I. Multiple Choice 15 marks 1. Reactions that can proceed in both the forward and reverse directions are said to be: A. complete B. reversible

More information

CHEMISTRY 12 EQUILIBRIUM PROPERTIES & ENTROPY AND ENTHALPY WORKSHEET CHEMISTRY 12 EQUILIBRIUM PROPERTIES WORKSHEET

CHEMISTRY 12 EQUILIBRIUM PROPERTIES & ENTROPY AND ENTHALPY WORKSHEET CHEMISTRY 12 EQUILIBRIUM PROPERTIES WORKSHEET CHEMISTRY 12 EQUILIBRIUM PROPERTIES & ENTROPY AND ENTHALPY WORKSHEET CHEMISTRY 12 EQUILIBRIUM PROPERTIES WORKSHEET 1) Write six statements that apply to all chemical equilibrium systems. (2 marks) System

More information

c) Explain the observations in terms of the DYNAMIC NATURE of the equilibrium system.

c) Explain the observations in terms of the DYNAMIC NATURE of the equilibrium system. Chemical Equilibrium - Part A: 1. At 25 o C and 101.3 kpa one mole of hydrogen gas and one mol of chlorine gas are reacted in a stoppered reaction vessel. After a certain time, three gases are detected

More information

Chapter 15 Equilibrium

Chapter 15 Equilibrium Chapter 15. Chemical Equilibrium Sample Exercise 15.1 (p. 632) Write the equilibrium expression for K eq for these three reactions: a) 2 O 3(g) 3 O 2(g) b) 2 NO (g) + Cl 2(g) 2 NOCl (g) c) Ag + (aq) +

More information

Enthalpy and Entropy

Enthalpy and Entropy Tutorial 2 - Solutions Enthalpy and Entropy Answers to questions 1-8 on page 6 & 7 of Tutorial 2: 1. Tell whether each of the following is endothermic or exothermic and state which has minimum enthalpy,

More information

1. Describe the changes in reactant and product concentration as equilibrium is approached.

1. Describe the changes in reactant and product concentration as equilibrium is approached. Web Review 1. Describe the changes in reactant and product concentration as equilibrium is approached. 2. Describe the changes in the forward and the reverse rates as equilibrium is approached. 3. State

More information

SCH4U: EXAM REVIEW. 2. Which of the following has a standard enthalpy of formation of 0 kj mol -1 at 25ºC and 1.00 atm?

SCH4U: EXAM REVIEW. 2. Which of the following has a standard enthalpy of formation of 0 kj mol -1 at 25ºC and 1.00 atm? SCH4U_08-09 SCH4U: EXAM REVIEW 1. The heat of a reaction is equal to: a. enthalpy (products) + enthalpy (reactants) b. enthalpy (reactants) enthalpy (products) c. enthalpy (products) enthalpy (reactants)

More information

Chemistry 12 Unit 2: Dynamic Equilibrium. KEY Unit 2 Problem Set A KEY

Chemistry 12 Unit 2: Dynamic Equilibrium. KEY Unit 2 Problem Set A KEY Chemistry 12 Unit 2: Dynamic Equilibrium KEY Unit 2 Problem Set A KEY 1. Water is boiling in a kettle at 100 C. Is the system at equilibrium? Explain. No. The system is not closed. 2. Ice and water are

More information

8. The table below describes two different reactions in which Reaction 1 is faster. What accounts for this observation? Reaction 1 Reaction 2.

8. The table below describes two different reactions in which Reaction 1 is faster. What accounts for this observation? Reaction 1 Reaction 2. Public Review - Rates and Equilibrium June 2005 1. What does X represent in the diagram below? (A) activation energy for the forward reaction (B) activation energy for the reverse reaction (C) heat of

More information

Which of the following units could be used to express reaction rate? Reaction Kinetics Monster Review

Which of the following units could be used to express reaction rate? Reaction Kinetics Monster Review Chemistry 12 Reaction Kinetics Monster Review 1. Which of the following units could be used to express reaction rate? A. ml s B. ml g C. g ml D. ml mol 2. Consider the reaction: Zn( s) + 2HCl( aq) ZnCl2(

More information

Chemical Kinetics and Equilibrium

Chemical Kinetics and Equilibrium Chemical Kinetics and Equilibrium 1 Which statement incorrectly describes a chemical reaction approaching equilibrium? As a chemical reaction approaches equilibrium, the net change in the amount of reactants

More information

Chemistry 12 JANUARY Course Code = CH. Student Instructions

Chemistry 12 JANUARY Course Code = CH. Student Instructions MINISTRY USE ONLY MINISTRY USE ONLY Place Personal Education Number (PEN) here. Place Personal Education Number (PEN) here. MINISTRY USE ONLY Chemistry 12 2002 Ministry of Education JANUARY 2002 Course

More information

Chapter 15 Equilibrium

Chapter 15 Equilibrium Chapter 15. Chemical Equilibrium 15.1 The Concept of Equilibrium Chemical equilibrium is the point at which the concentrations of all species are constant. A dynamic equilibrium exists when the rates of

More information

CHEMpossible. Final Exam Review

CHEMpossible. Final Exam Review CHEMpossible Final Exam Review 1. Given the following pair of reactions and their equilibrium constants: 2NO 2 (g) 2NO (g) + O 2 (g) K c = 15.5 2NO (g) + Cl 2 (g) 2 NOCl (g) K c = 3.20 10-3 Calculate a

More information

11 Equilibrium. S T A T I O N 1 K e q E X P R E S S I O N S S T A T I O N 2 G R A P H S. South Pasadena Honors Chemistry 11 Equilibrium Period Date

11 Equilibrium. S T A T I O N 1 K e q E X P R E S S I O N S S T A T I O N 2 G R A P H S. South Pasadena Honors Chemistry 11 Equilibrium Period Date South Pasadena Honors Chemistry Name 11 Equilibrium Period Date S T A T I O N 1 K e q E X P R E S S I O N S Write the expression for the equilibrium constant for the reaction: Fe 3+ (aq) + SCN (aq) FeSCN

More information

1. The Haber- Bosch Process 2. K eq

1. The Haber- Bosch Process 2. K eq Chemistry 12 Equilibrium III Name: Date: Block: 1. The Haber- Bosch Process 2. K eq The Haber- Bosch Process Almost all of the world s ammonia is produced via the Haber- Bosch process and almost all of

More information

CHEMISTRY 12 JUNE 2000 STUDENT INSTRUCTIONS

CHEMISTRY 12 JUNE 2000 STUDENT INSTRUCTIONS Insert Personal Education Number (PEN) here. Insert only pre-printed PEN label here. STUDENT INSTRUCTIONS 1. Insert the stickers with your Personal Education Number (PEN) in the allotted spaces above.

More information

Chemistry 12 Review Sheet on Unit 2 Chemical Equilibrium

Chemistry 12 Review Sheet on Unit 2 Chemical Equilibrium 1. What two things are equal at equilibrium? Chemistry 12 Review Sheet on Unit 2 Chemical Equilibrium and 2. Consider the following potential energy diagram: a) Which reaction, forward or reverse, will

More information

Calculations Involving the Equilibrium Constant K eq )

Calculations Involving the Equilibrium Constant K eq ) Calculations Involving the Equilibrium Constant K eq ) 1. Given the equilibrium equation below: A 2(g) + B 2(g) 2AB (g) If, at equilibrium, the concentrations are as follows: [A 2 ] = 3.45 M, [B 2 ] =

More information

BCIT Winter Chem Exam #1

BCIT Winter Chem Exam #1 BCIT Winter 2014 Chem 0012 Exam #1 Name: Attempt all questions in this exam. Read each question carefully and give a complete answer in the space provided. Part marks given for wrong answers with partially

More information

Chapter 15 Equilibrium

Chapter 15 Equilibrium Chapter 15. Chemical Equilibrium Common Student Misconceptions Many students need to see how the numerical problems in this chapter are solved. Students confuse the arrows used for resonance ( )and equilibrium

More information

Gas Phase Equilibrium

Gas Phase Equilibrium Gas Phase Equilibrium Chemical Equilibrium Equilibrium Constant K eq Equilibrium constant expression Relationship between K p and K c Heterogeneous Equilibria Meaning of K eq Calculations of K c Solving

More information

Equilibrium. What is equilibrium? Hebden Unit 2 (page 37 69) Dynamic Equilibrium

Equilibrium. What is equilibrium? Hebden Unit 2 (page 37 69) Dynamic Equilibrium Equilibrium What is equilibrium? Hebden Unit (page 37 69) Dynamic Equilibrium Hebden Unit (page 37 69) Experiments show that most reactions, when carried out in a closed system, do NOT undergo complete

More information

The Factors that Determine the Equilibrium State

The Factors that Determine the Equilibrium State The Factors that Determine the Equilibrium State The equilibrium state (or the ratio of products to reactants) is determined by two factors: 1. Energy Systems tend to move toward a state of minimum potential

More information

Chemical Equilibrium

Chemical Equilibrium Chemical Equilibrium What is equilibrium? Expressions for equilibrium constants, K eq ; Calculating K eq using equilibrium concentrations; Factors that affect equilibrium; Le Chatelier s Principle What

More information

Chemistry 12 APRIL Course Code = CH. Student Instructions

Chemistry 12 APRIL Course Code = CH. Student Instructions MINISTRY USE ONLY MINISTRY USE ONLY Place Personal Education Number (PEN) here. Place Personal Education Number (PEN) here. MINISTRY USE ONLY Chemistry 12 2002 Ministry of Education APRIL 2002 Course Code

More information

Chem 12 Equilibrium, Enthalpy and Entropy Name:

Chem 12 Equilibrium, Enthalpy and Entropy Name: Chem 12 Equilibrium, Enthalpy and Entropy Name: 1. What do people mean when they say that a reaction is reversible? 2. Give four things which are true about a system at equilibrium: 1. _ 2. _ 3. _ 4. _

More information

a) Write the expression for the equilibrium constant, K eq

a) Write the expression for the equilibrium constant, K eq Chemistry 12 K eq Calculations Worksheet Name: Date: Block: 1. Given the equilibrium equation below: A 2(g) + B 2(g) 2AB (g) If, at equilibrium, the concentrations are as follows: [A 2] = 3.45 M, [B 2]

More information

1 A. That the reaction is endothermic when proceeding in the left to right direction as written.

1 A. That the reaction is endothermic when proceeding in the left to right direction as written. 1 Q. If Δ r H is positive, what can you say about the reaction? 1 A. That the reaction is endothermic when proceeding in the left to right direction as written. 2 Q If Δ r H is negative, what can you say

More information

Chemistry 12 AUGUST Course Code = CH. Student Instructions

Chemistry 12 AUGUST Course Code = CH. Student Instructions MINISTRY USE ONLY MINISTRY USE ONLY Place Personal Education Number (PEN) here. Place Personal Education Number (PEN) here. MINISTRY USE ONLY Chemistry 12 2001 Ministry of Education AUGUST 2001 Course

More information

1. Which of the following units could be used to express the reaction rate?

1. Which of the following units could be used to express the reaction rate? Chemistry 12 Kinetics Practice Test # 2 1. Which of the following units could be used to express the reaction rate? A. ml/s B. ml/g C. g/ml D. ml/mol 2. Consider the reaction: Zn (s) + 2HCl (aq) ZnCl 2(aq)

More information

II.1 EQUILIBRIUM REVERSIBLE REACTIO2S

II.1 EQUILIBRIUM REVERSIBLE REACTIO2S II.1 EQUILIBRIUM REVERSIBLE REACTIO2S Many reactions can go in reverse and have separate activation energies. Reactants Products or Reactants Products Reactants form Products Products form Reactants Example:

More information

PROVINCIAL EXAMINATION MINISTRY OF EDUCATION CHEMISTRY 12 GENERAL INSTRUCTIONS

PROVINCIAL EXAMINATION MINISTRY OF EDUCATION CHEMISTRY 12 GENERAL INSTRUCTIONS INSERT STUDENT I.D. NUMBER (PEN) STICKER IN THIS SPACE APRIL 1996 PROVINCIAL EXAMINATION MINISTRY OF EDUCATION CHEMISTRY 12 GENERAL INSTRUCTIONS 1. Insert the stickers with your Student I.D. Number (PEN)

More information

1. Given the system at equilibrium: Fe 3+ (aq) + SCN (aq)

1. Given the system at equilibrium: Fe 3+ (aq) + SCN (aq) 1. Given the system at equilibrium: A) Fe 3+ (aq) + SCN (aq) FeSCN 2+ (aq) What happens to the concentrations of the three ions when some Fe 3+ ion is removed by precipitation from this aqueous solution,

More information

AP CHEMISTRY NOTES 8-1 CHEMICAL EQUILIBRIUM: AN INTRODUCTION

AP CHEMISTRY NOTES 8-1 CHEMICAL EQUILIBRIUM: AN INTRODUCTION AP CHEMISTRY NOTES 8-1 CHEMICAL EQUILIBRIUM: AN INTRODUCTION Chemical Equilibrium a dynamic state in which the rate of the forward reaction and the rate of the reverse reaction in a system are equal (the

More information

ANSWERS: UNIT 3 EQUILIBRIUM I

ANSWERS: UNIT 3 EQUILIBRIUM I ANSWERS: UNIT 3 EQUILIBRIUM I 1. a) [NaOH] = 4.00 g/40 g/mol / 0.10 L ii) [CaCl 2 ] = 16.0 g/111 g/mol / 0.250 L = 1.00 M = 0.577 M iii) [KOH] = 14.0 g/56 g/mol / 0.075 L iv) [H 2 C 2 O 4 ] = 6.75 g/90

More information

Taking another look at Enthalpy vs. Entropy

Taking another look at Enthalpy vs. Entropy Taking another look at Enthalpy vs. Entropy 1) Tell whether each of the following chemical reactions is endothermic or exothermic and state whether the reactants or the products are favoured by minimum

More information

Chapter 15 Equilibrium

Chapter 15 Equilibrium Chapter 15. Chemical Equilibrium Common Student Misconceptions Many students need to see how the numerical problems in this chapter are solved. Students confuse the arrows used for resonance ( )and equilibrium

More information

REACTION EQUILIBRIUM

REACTION EQUILIBRIUM REACTION EQUILIBRIUM A. REVERSIBLE REACTIONS 1. In most spontaneous reactions the formation of products is greatly favoured over the reactants and the reaction proceeds to completion (one direction). In

More information

CH1810-Lecture #8 Chemical Equilibrium: LeChatlier s Principle and Calculations with K eq

CH1810-Lecture #8 Chemical Equilibrium: LeChatlier s Principle and Calculations with K eq CH1810-Lecture #8 Chemical Equilibrium: LeChatlier s Principle and Calculations with K eq LeChatlier s Principle A system at equilibrium responds to a stress in such a way that it relieves that stress.

More information

1. Which of the following units could be used to express the reaction rate?

1. Which of the following units could be used to express the reaction rate? Chemistry 12 Kinetics Practice Test # 2 1. Which of the following units could be used to express the reaction rate? A. ml/s B. ml/g C. g/ml D. ml/mol 2. Consider the reaction: Zn (s) + 2HCl (aq) ZnCl 2(aq)

More information

Section 10. Rates of Reactions Goal: Learn how temperature, concentration, and catalysts affect the rate of reaction. Summary

Section 10. Rates of Reactions Goal: Learn how temperature, concentration, and catalysts affect the rate of reaction. Summary Chapter 10 Reaction Rates and Chemical Equilibrium Section 10. Rates of Reactions Goal: Learn how temperature, concentration, and catalysts affect the rate of reaction. Summary The rate of a reaction is

More information

6. Which expression correctly describes the equilibrium constant for the following reaction? 4NH 3 (g) + 5O 2 (g) 4NO(g) + 6H 2 O(g)

6. Which expression correctly describes the equilibrium constant for the following reaction? 4NH 3 (g) + 5O 2 (g) 4NO(g) + 6H 2 O(g) 1. Which of the following can we predict from an equilibrium constant for a reaction? 1. The extent of a reaction 2. Whether the reaction is fast or slow 3. Whether a reaction is exothermic or endothermic

More information

Worksheet 21 - Le Chatelier's Principle

Worksheet 21 - Le Chatelier's Principle Worksheet 21 - Le Chatelier's Principle Le Chatelier's Principle states that if a stress is applied to a system at equilibrium, the system will adjust, to partially offset the stress and will reach a new

More information

CHEMISTRY 12 UNIT II EQUILIBRIUM

CHEMISTRY 12 UNIT II EQUILIBRIUM CHEMISTRY 12 UNIT II EQUILIBRIUM F: Dynamic Equilibrium (The Quantitative Approach) It is expected that students will be able to F1: The Equilibrium Constant - Gather and interpret data on the concentration

More information

Chemistry 122 Wrap-Up Review Kundell

Chemistry 122 Wrap-Up Review Kundell Chapter 11 Chemistry 122 Wrap-Up Review Kundell 1. The enthalpy (heat) of vaporization for ethanol (C 2 H 5 OH) is 43.3 kj/mol. How much heat, in kilojoules, is required to vaporize 115 g of ethanol at

More information

Solubility & Equilibrium Unit Review

Solubility & Equilibrium Unit Review Solubility & Equilibrium Unit Review This review is worth 3 marks of your total test marks. It must be completed on test day. 3 marks will be given to students who have fully completed this review with

More information

CHEM Dr. Babb s Sections Lecture Problem Sheets

CHEM Dr. Babb s Sections Lecture Problem Sheets CHEM 116 - Dr. Babb s Sections Lecture Problem Sheets Kinetics: Integrated Form of Rate Law 61. Give the integrated form of a zeroth order reaction. Define the half-life and find the halflife for a general

More information

91166 Demonstrate understanding of chemical reactivity Collated questions on equilibria

91166 Demonstrate understanding of chemical reactivity Collated questions on equilibria (2017:2) 91166 Demonstrate understanding of chemical reactivity Collated questions on equilibria The addition of a small amount of iron to a mixture of nitrogen and hydrogen gases helps to speed up the

More information

Collision Theory. Unit 12: Chapter 18. Reaction Rates. Activation Energy. Reversible Reactions. Reversible Reactions. Reaction Rates and Equilibrium

Collision Theory. Unit 12: Chapter 18. Reaction Rates. Activation Energy. Reversible Reactions. Reversible Reactions. Reaction Rates and Equilibrium Collision Theory For reactions to occur collisions between particles must have Unit 12: Chapter 18 Reaction Rates and Equilibrium the proper orientation enough kinetic energy See Both In Action 1 2 Activation

More information

PROVINCIAL EXAMINATION MINISTRY OF EDUCATION CHEMISTRY 12 GENERAL INSTRUCTIONS

PROVINCIAL EXAMINATION MINISTRY OF EDUCATION CHEMISTRY 12 GENERAL INSTRUCTIONS INSERT STUDENT I.D. NUMBER (PEN) STICKER IN THIS SPACE JUNE 1998 PROVINCIAL EXAMINATION MINISTRY OF EDUCATION CHEMISTRY 12 GENERAL INSTRUCTIONS 1. Insert the stickers with your Student I.D. Number (PEN)

More information

Section 7.2: Equilibrium Law and the Equilibrium Constant Tutorial 1 Practice, page (a) 2 CO 2 (g) #!!"

Section 7.2: Equilibrium Law and the Equilibrium Constant Tutorial 1 Practice, page (a) 2 CO 2 (g) #!! Section 7.: Equilibrium Law and the Equilibrium Constant Tutorial Practice, page 4. (a) CO (g) #!!"! CO(g) + O (g) Products: CO(g); O (g) Reactant: CO (g) [CO [O Equilibrium law equation: [CO (b) Cl (g)

More information

6. Which will react faster: Magnesium and 2M hydrochloric acid, or Magnesium and 0.5M hydrochloric acid?

6. Which will react faster: Magnesium and 2M hydrochloric acid, or Magnesium and 0.5M hydrochloric acid? REACTION RATES WORKSHEET WS#1 1. Identify the three components of collision theory. What are the three factors that must be true for a collision to be successful? a. b. c. 2. Do all collisions result in

More information

Chemical Equilibrium

Chemical Equilibrium Chemical Equilibrium Many reactions are reversible, i.e. they can occur in either direction. A + B AB or AB A + B The point reached in a reversible reaction where the rate of the forward reaction (product

More information

January 03, Ch 13 SB equilibrium.notebook

January 03, Ch 13 SB equilibrium.notebook Ch 13: Chemical Equilibrium exists when 2 opposing reactions occur simultaneously at the same rate (dynamic rather than static) Forward rate = reverse rate https://www.youtube.com/watch?v=wld_imyqagq The

More information

Equilibrium & Reaction Rate

Equilibrium & Reaction Rate Equilibrium & Reaction Rate 1. One of the important reactions in coal gasification is the catalytic methanation reaction: CO(g) + H (g) H O(g) + CH 4 (g) H 06 kj a) Predict the direction in which this

More information

Chemistry Lab Equilibrium Practice Test

Chemistry Lab Equilibrium Practice Test Chemistry Lab Equilibrium Practice Test Basic Concepts of Equilibrium and Le Chatelier s Principle 1. Which statement is correct about a system at equilibrium? (A) The forward and reverse reactions occur

More information

Equilibrium and Reaction Rate

Equilibrium and Reaction Rate Equilibrium and Reaction Rate Multiple Choice Questions - Answers 1. Activation energy could be considered as the minimum energy required to do which of these? A. change the orientation of the reactant

More information

Write equilibrium law expressions from balanced chemical equations for heterogeneous and homogeneous systems. Include: mass action expression.

Write equilibrium law expressions from balanced chemical equations for heterogeneous and homogeneous systems. Include: mass action expression. Equilibrium 1 UNIT 3: EQUILIBRIUM OUTCOMES All important vocabulary is in Italics and bold. Relate the concept of equilibrium to physical and chemical systems. Include: conditions necessary to achieve

More information

Chemistry 12. Resource Exam B. Exam Booklet

Chemistry 12. Resource Exam B. Exam Booklet Chemistry 12 Resource Exam B Exam Booklet Contents: 21 pages Examination: 2 hours 50 multiple-choice questions in the Exam Booklet Additional Time Permitted: 60 minutes Province of British Columbia PART

More information

Free-energy change ( G) and entropy change ( S)

Free-energy change ( G) and entropy change ( S) Free-energy change ( G) and entropy change ( S) A SPONTANEOUS PROCESS (e.g. diffusion) will proceed on its own without any external influence. A problem with H A reaction that is exothermic will result

More information

which has an equilibrium constant of Which of the following diagrams represents a mixture of the reaction at equilibrium?

which has an equilibrium constant of Which of the following diagrams represents a mixture of the reaction at equilibrium? Chapter 9 Quiz: Chemical Equilibria 1. Which of the following statements is true regarding chemical equilibrium? I. The concentrations of reactants and products at equilibrium are constant, which means

More information

b t u t sta t y con o s n ta t nt

b t u t sta t y con o s n ta t nt Reversible Reactions & Equilibrium Reversible Reactions Reactions are spontaneous if G G is negative. 2H 2 (g) + O 2 (g) 2H 2 O(g) + energy If G G is positive the reaction happens in the opposite direction.

More information

A reversible reaction is a chemical reaction where products can react to form the reactants and vice versa.

A reversible reaction is a chemical reaction where products can react to form the reactants and vice versa. Chemistry 12 Unit II Dynamic Equilibrium Notes II.1 The Concept of Dynamic Equilibrium A reversible reaction is a chemical reaction where products can react to form the reactants and vice versa. A reversible

More information

Chemical Equilibrium. Many reactions are, i.e. they can occur in either direction. A + B AB or AB A + B

Chemical Equilibrium. Many reactions are, i.e. they can occur in either direction. A + B AB or AB A + B Chemical Equilibrium Many reactions are, i.e. they can occur in either direction. A + B AB or AB A + B The point reached in a reversible reaction where the rate of the forward reaction (product formation,

More information

Chapter 13: Chemical Equilibrium

Chapter 13: Chemical Equilibrium Chapter 13: Chemical Equilibrium 13.1 The Equilibrium Condition Equilibrium: a state in which no observable changes occur H 2 O (l) H 2 O (g) Physical equilibrium: no chemical change. N 2(g) + 3H 2(g)

More information

CHEM Dr. Babb s Sections Exam #4 Review Sheet

CHEM Dr. Babb s Sections Exam #4 Review Sheet CHEM 116 - Dr. Babb s Sections Exam #4 Review Sheet 158. Explain using the HC 2 H 3 O 2 /NaC 2 H 3 O 2 buffer system how a buffer maintains a relatively constant ph when small quantity of acid (HCl) or

More information

Chemistry 12 June 2003 Provincial Examination

Chemistry 12 June 2003 Provincial Examination Chemistry 12 June 2003 Provincial Examination ANSWER KEY / SCORING GUIDE CURRICULUM: Organizers 1. Reaction Kinetics 2. Dynamic Equilibrium 3. Solubility Equilibria 4. Acids, Bases, and Salts 5. Oxidation

More information

Chapter 6: Chemical Equilibrium

Chapter 6: Chemical Equilibrium Chapter 6: Chemical Equilibrium 6.1 The Equilibrium Condition 6.2 The Equilibrium Constant 6.3 Equilibrium Expressions Involving Pressures 6.4 The Concept of Activity 6.5 Heterogeneous Equilibria 6.6 Applications

More information

Reaction Rates and Chemical Equilibrium

Reaction Rates and Chemical Equilibrium Reaction Rates and Chemical Equilibrium 12-1 12.1 Reaction Rates a measure of how fast a reaction occurs. Some reactions are inherently fast and some are slow 12-2 12.2 Collision Theory In order for a

More information

Reaction Rates and Chemical Equilibrium

Reaction Rates and Chemical Equilibrium Reaction Rates and Chemical Equilibrium : 12-1 12.1 Reaction Rates : a measure of how fast a reaction occurs. Some reactions are inherently fast and some are slow: 12-2 1 12.2 Collision Theory In order

More information

Based on the kinetic molecular theory of gases, which one of the following statements is INCORRECT?

Based on the kinetic molecular theory of gases, which one of the following statements is INCORRECT? 1 Based on the kinetic molecular theory of gases, which one of the following statements is INCORRECT? A) The collisions between gas molecules are perfectly elastic. B) At absolute zero, the average kinetic

More information

Homework #5 Chapter 6 Chemical Equilibrium

Homework #5 Chapter 6 Chemical Equilibrium Homework #5 Chapter 6 Chemical Equilibrium 2. Assume the reaction is A + B C + D. It is given that K9 and K [C][D]. At the start of [A][B] the reaction, before equilibrium is reached, there are 8 A molecules,

More information

C h a p t e r 13. Chemical Equilibrium

C h a p t e r 13. Chemical Equilibrium C h a p t e r 13 Chemical Equilibrium Chemical equilibrium is achieved when: the rates of the forward and reverse reactions are equal and the concentrations of the reactants and products remain constant

More information

Chemistry 3202 Pre-Public Examination May 2012 Name:

Chemistry 3202 Pre-Public Examination May 2012 Name: Chemistry 3202 Pre-Public Examination May 2012 Name: Section A: Multiple Choice This section contains 40 multiple choice covering concepts from the entire course. Please answer all multiple choice items

More information

Chapter Test A. Chapter: Chemical Equilibrium

Chapter Test A. Chapter: Chemical Equilibrium Assessment Chapter Test A Chapter: Chemical Equilibrium In the space provided, write the letter of the term or phrase that best completes each statement or best answers each question. 1. A 15.0 ml volume

More information

I. Multiple Choice Questions (Type-I) is K p

I. Multiple Choice Questions (Type-I) is K p Unit 7 EQUILIBRIUM I. Multiple Choice Questions (Type-I) 1. We know that the relationship between K c and K p is K p K c (RT) n What would be the value of n for the reaction NH 4 Cl (s) NH 3 (g) + HCl

More information

CHM Third Hour Exam Spring 2003

CHM Third Hour Exam Spring 2003 CHM 1143 Third Hour Exam Spring 2003 Each question is worth 10 points. You get six free misses. Write the letter of your choice to the right of the answer choices. MULTIPLE CHOICE. Choose the one alternative

More information

3 A (aq) + 2 D (aq) 4 C (g) + B (s) + 2 E (l)

3 A (aq) + 2 D (aq) 4 C (g) + B (s) + 2 E (l) AP Chemistry Test (Chapter 13) Multiple Choice (20%) 1) Which one best describes the K C for this reaction? 3 A (aq) + 2 D (aq) 4 C (g) + B (s) + 2 E (l) A) K c = [A] 3 [D] 2 B) K c = [C] 4 [B][E] 2 [C]

More information

AP Chemistry Chapter 16 Assignment. Part I Multiple Choice

AP Chemistry Chapter 16 Assignment. Part I Multiple Choice Page 1 of 7 AP Chemistry Chapter 16 Assignment Part I Multiple Choice 1984 47. CH 4 (g) + 2 O 2 (g) CO 2 (g) + 2 H 2 O(l) H = 889.1 kj H f H 2 O(l) = 285.8 kj mol 1 H f CO 2 (g) = 393.3 kj mol 1 What is

More information

1.6 Chemical equilibria and Le Chatelier s principle

1.6 Chemical equilibria and Le Chatelier s principle 1.6 Chemical equilibria and Le Chatelier s principle Reversible reactions: Consider the reaction: Mg(s) + H2SO4(aq) MgSO4(aq) + H2(g) The reaction stops when all of the limiting reagent has been used up.

More information

QUESTIONS: Equilibria AS & AS

QUESTIONS: Equilibria AS & AS QUESTION (2012:2) Phosphorus pentachloride gas, PCl 5 (g), decomposes to form phosphorus trichloride gas, PCl 3 (g), and chlorine gas, Cl 2 (g). The equilibrium can be represented as: PCl 5 (g) Ý PCl 3

More information

Unit 13 Kinetics & Equilibrium Page 1 of 14 Chemistry Kinetics, Entropy, Equilibrium, LeChatelier s Principle, K, Unit 13 Quiz: Unit 13 Test:

Unit 13 Kinetics & Equilibrium Page 1 of 14 Chemistry Kinetics, Entropy, Equilibrium, LeChatelier s Principle, K, Unit 13 Quiz: Unit 13 Test: Unit 13 Kinetics & Equilibrium Page 1 of 14 Chemistry Kinetics, Entropy, Equilibrium, LeChatelier s Principle, K, Unit 13 Quiz: Unit 13 Test: Final Project: VOCABULARY: 1 Chemical equilibrium 2 equilibrium

More information

CAMOSUN COLLEGE. Chemistry 121 Section 03

CAMOSUN COLLEGE. Chemistry 121 Section 03 CAMOSUN COLLEGE Chemistry 121 Section 03 Instructor: H. M. Cartwright Page 1 Midterm 2 Examination, March 25 th, 2015, 6.30 p.m. Time: 1 ½ hours Name Student Number Answer all questions on the examination

More information

ENTHALPY, ENTROPY AND FREE ENERGY CHANGES

ENTHALPY, ENTROPY AND FREE ENERGY CHANGES ENTHALPY, ENTROPY AND FREE ENERGY CHANGES Refer to the following figures for Exercises 1-6. The lines on the vertical axis represent the allowed energies. Assume constant spacing between levels to determine

More information

Chemical Equilibrium. A state of no net change in reactant & product concentrations. There is a lot of activity at the molecular level.

Chemical Equilibrium. A state of no net change in reactant & product concentrations. There is a lot of activity at the molecular level. Chemical Equilibrium A state of no net change in reactant & product concentrations. BUT There is a lot of activity at the molecular level. 1 Kinetics Equilibrium For an elementary step in the mechanism:

More information

A.P. Chemistry. Unit #11. Chemical Equilibrium

A.P. Chemistry. Unit #11. Chemical Equilibrium A.P. Chemistry Unit #11 Chemical Equilibrium I. Chemical Equilibrium the point in a reaction at which the concentrations of products and reactants remain constant Dynamic Equilibrium the equilibrium condition

More information

Name:. Correct Questions = Wrong Questions =.. Unattempt Questions = Marks =

Name:. Correct Questions = Wrong Questions =.. Unattempt Questions = Marks = Name:. Correct Questions = Wrong Questions =.. Unattempt Questions = Marks = 1. Which anion forms the smallest number of insoluble salts? (A) Cl - (B) NO 3 - (C) CO 3 2- (D) SO 4 2-2. Which piece of apparatus

More information

b. There is no net change in the composition (as long as temperature is constant).

b. There is no net change in the composition (as long as temperature is constant). CHAPTER THIRTEEN Questions 9. a. The rates of the forward and reverse reactions are equal at equilibrium. b. There is no net change in the composition (as long as temperature is constant). 10. False. Equilibrium

More information