Lesson 3.2.3
3.2.3 Chemical equilibrium Quiz: OCR Chemistry, Unit 2
20 questions
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Lesson 3.2.3, Chemical equilibrium: 20 multiple choice questions for the OCR Chemistry (H432), Unit 2: Periodic table and energy, written with Revision Ninja.
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The 20 questions
-
What feature is equal for both forward and reverse reactions at dynamic equilibrium?
- Reaction rates
- Mole fractions
- Activation energies
- Reactant concentrations
-
Which direction does the position of equilibrium shift when temperature is increased for an exothermic reaction?
- To the left
- No shift
- Symmetrically
- To the right
-
Increasing total pressure shifts a gaseous equilibrium towards which side?
- Fewer gas moles
- More gas moles
- Reactants only
- Same gas moles
-
How does adding a catalyst affect the position of a dynamic equilibrium?
- No effect
- Shifts left
- Shifts right
- Increases yield
-
Why is a compromise temperature used industrially for exothermic equilibrium reactions?
- Purity versus toxicity
- Rate versus yield
- Pressure versus volume
- Cost versus safety
-
What is the Kc expression for N2 + 3H2 ⇌ 2NH3?
- [N2][H2]^3 / [NH3]^2
- [NH3]^2 / ([N2] + [H2]^3)
- [NH3] / ([N2][H2])
- [NH3]^2 / ([N2][H2]^3)
-
At equilibrium for A + 2B ⇌ C, [A] = 0.20, [B] = 0.50 and [C] = 0.10 mol dm-3. What is the value of Kc?
- 2.0
- 10.0
- 5.0
- 0.4
-
What does a very large value of the equilibrium constant Kc indicate?
- Mostly products
- Equal amounts
- No reaction
- Mostly reactants
-
What does a very small value of the equilibrium constant Kc indicate?
- Equal amounts
- Fast reaction
- Mostly reactants
- Mostly products
-
Which way does the equilibrium position shift if additional reactant is added?
- Upwards
- No change
- To the right
- To the left
-
Which way does the equilibrium position shift if a product is continuously removed?
- Inwards
- No change
- To the left
- To the right
-
How does increasing the temperature affect the value of Kc for an endothermic reaction?
- Kc becomes zero
- Kc stays constant
- Kc increases
- Kc decreases
-
What effect does changing pressure have on an equilibrium with equal gas moles on both sides?
- No effect
- Increases yield
- Shifts left
- Shifts right
-
In H2 + I2 ⇌ 2HI, the equilibrium concentrations are [H2] = [I2] = 0.10 and [HI] = 0.80 mol dm-3. What is Kc?
- 8.0
- 0.125
- 64
- 16
-
Why does adding a catalyst shorten the time taken to reach dynamic equilibrium?
- Increases forward rate
- Increases equilibrium yield
- Lowers product energy
- Increases both rates
-
What is the main industrial drawback of using extremely high pressure in equilibrium reactions?
- Reduced product yield
- High equipment costs
- Lower reaction rate
- Catalyst poisoning
-
For an exothermic reaction, what happens to the value of Kc when temperature increases?
- Doubles
- Increases
- Stays the same
- Decreases
-
Which change shifts the position of equilibrium towards products for an exothermic reaction?
- Adding a catalyst
- Increasing volume
- Raising temperature
- Lowering temperature
-
What does a Kc value close to 1 indicate about an equilibrium mixture?
- Mostly reactants
- Mostly products
- Comparable amounts
- No products
-
What happens to the position of equilibrium when an inert gas is added at constant volume?
- Shifts to products
- Remains unchanged
- Shifts to reactants
- Oscillates continuously
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