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Many industrial processes involve reversible chemical reactions that reach equilibrium. The economic viability of these processes depends on:
✔ The yield (amount of product formed compared to reactants).
✔ The reaction rate (how quickly products form).
✔ The cost-effectiveness of production.
Two major industrial processes that rely on equilibrium principles are:
Reaction:
Reactants: Nitrogen and Hydrogen
Products: Ammonia
Reaction Conditions:
Equilibrium Considerations:
Step 2 Reaction:
Reactants: Sulphur dioxide and Oxygen
Product: Sulphur trioxide
Reaction Conditions:
Equilibrium Considerations:
To maximise yield and efficiency, industries use:
✔ Lower temperatures (for exothermic reactions) while balancing reaction rate.
✔ Higher pressure (for reactions producing fewer gas molecules).
✔ Catalysts to speed up reaction rates without shifting equilibrium.
✔ Continuous removal of products to drive equilibrium forward.
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