emilios
Well-Known Member
- Joined
- Jan 31, 2013
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- HSC
- 2014
Came across a Haber question:
"The volume of the reaction vessel was reduced. Explain the changes that occur"
Success One's answer:
" [formula for Haber process]
When the volume is reduced the concentrations of reactants and products immediately increase, which increases the total pressure. The equilibrium shifts forward to partially counteract this change because there are four moles of reactants and only two moles of products. A forward shift reduces the number of molecules as four react to form two. This reduces the pressure"
Is that actually the correct link between concentration and pressure?
I thought reducing the volume increased the concentration of all the substances, (since c=n/v) but increased the concentration of the reactants moreso than the products as there are more moles of reactant gases. This hence shifts equilibrium to the right. I would not have discussed pressure at all. Thoughts and explanations on why changes in volume actually shifts equilibrium to favour the side with less/more moles of gas?
"The volume of the reaction vessel was reduced. Explain the changes that occur"
Success One's answer:
" [formula for Haber process]
When the volume is reduced the concentrations of reactants and products immediately increase, which increases the total pressure. The equilibrium shifts forward to partially counteract this change because there are four moles of reactants and only two moles of products. A forward shift reduces the number of molecules as four react to form two. This reduces the pressure"
Is that actually the correct link between concentration and pressure?
I thought reducing the volume increased the concentration of all the substances, (since c=n/v) but increased the concentration of the reactants moreso than the products as there are more moles of reactant gases. This hence shifts equilibrium to the right. I would not have discussed pressure at all. Thoughts and explanations on why changes in volume actually shifts equilibrium to favour the side with less/more moles of gas?