STUDENT SPACE · TOPIC 5
Changing equilibrium conditions
Predict and explain the effects of changed conditions.
The essentials
- Adding a reactant favours its consumption and increases the equilibrium amount of product.
- Increasing pressure by reducing volume favours the side with fewer moles of gas.
- Increasing temperature favours the endothermic direction. Decreasing it favours the exothermic direction.
Key vocabulary
| English | Chinese |
|---|
| equilibrium position | 平衡位置 |
| concentration | 浓度 |
| pressure | 压强 |
| catalyst | 催化剂 |
Quick practice
Try each question before opening its hint or answer. Use paper for calculations and diagrams.
Question 1
Does adding a catalyst increase equilibrium yield? Explain.
Need a hint for Question 1?
Underline gaseous coefficients for pressure, and label the endothermic direction for temperature.
Check Question 1
No. Both directions speed up and the equilibrium position stays the same.
Question 2
For H₂(g) + I₂(g) ⇌ 2HI(g), predict the effect of increased pressure on equilibrium position.
Need a hint for Question 2?
Count the gaseous coefficients on each side.
Check Question 2
No shift due to pressure: two moles of gas on each side.
Question 3
For N₂(g) + 3H₂(g) ⇌ 2NH₃(g), what happens when ammonia is removed from an equilibrium mixture? Explain the shift.
Need a hint for Question 3?
The system responds by opposing removal of a product.
Check Question 3
Removal favours the forward reaction and allows more ammonia to form.
Use Lesson 5 in your worksheet for written practice. Your teacher will discuss those answers in class.
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