When 12 moles of methanol (ch3oh) and 24 moles of oxygen gas react according to the chemical equation below, what is the limiting reactant and how much of the excess reactant is left over?

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bethgavrilyuk3635 bethgavrilyuk3635

22-06-2018
Chemistry

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When 12 moles of methanol (ch3oh) and 24 moles of oxygen gas react according to the chemical equation below, what is the limiting reactant and how much of the excess reactant is left over?

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Ishankahps Ishankahps · Answer 1 · 2018-07-01T10:15:46+02:00

The balanced reaction equation for the reaction between CH₃OH and O₂ is
2CH₃OH(l) + 3O₂(g) → 2CO₂(g) + 4H₂O(l)
Initial moles 12 24
Reacted moles 12 18
Final moles - 6 12 24

The stoichiometric ratio between CH₃OH and O₂ is 2 : 3
Hence,
reacted moles of O₂ = reacted moles of CH₃OH x (3/2)
= 12 mol x 3 / 2
= 18 mol

All of CH₃OH moles react with O₂.

Hence, the limiting agent is CH₃OH.

Excess reagent is O₂.
Amount of moles of excess reagent left = 24 - 18 mol = 6 mol