Simulation · Chemistry · Class 11
Push an equilibrium and watch it push back
From the lesson Factors affecting equilibria: Le Chatelier's principle in Equilibrium. Change the values and watch what happens.
The idea behind it
NCERT § "Factors Affecting Equilibria"
- Le Chatelier's principle: disturb an equilibrium by altering concentration, pressure or temperature, and the system responds by moving in whichever direction partly cancels that disturbance.
- Adding a reactant or removing a product shifts the equilibrium forward; the value of K does not change.
- Raising pressure by reducing volume shifts a gaseous equilibrium towards the side with fewer gas moles; if Δn = 0 pressure has no effect.
- Adding an inert gas at constant volume leaves the equilibrium unchanged, because the partial pressures and molar concentrations of the reacting gases stay the same.
- Temperature is the only factor that changes the value of K: for an exothermic reaction K falls as temperature rises; for an endothermic reaction K rises.
- For N₂O₄(g) ⇌ 2NO₂(g), which is endothermic, heating increases the brown NO₂ and cooling favours colourless N₂O₄.
- In the Haber process, N₂(g) + 3H₂(g) ⇌ 2NH₃(g) with ΔH = −92.38 kJ mol⁻¹, high pressure favours ammonia, and a moderate temperature with an iron catalyst balances yield against rate.
- A catalyst speeds up the forward and reverse reactions equally, so equilibrium is reached sooner but its composition and K do not change.
More simulations in Equilibrium
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