When 24 mol of methanol and 15 mol of oxygen combine in the combustion reaction, 2 ch3oh (

g. 3 o2 (

g. → 2 co2 (

g. 4 h2o (

g. what is the excess reactant and how many moles of it remain at the end of the reaction?

The balanced equation for combustion is as follows;

2CH₃OH + 3O₂ - - - > 2CO₂ + 4H₂O

The stoichiometry of CH₃OH to O₂ is 2:3

the limiting reagent is the reactant that is fully consumed during the reaction. The amount of product formed is directly proportional to the amount of limiting reactant produced. The excess reagent is the reactant that is provided in excess and is not fully used up, there will be an amount of this reagent remaining after the reaction.

If methanol is the limiting reactant,

If 2 mol of methanol reacts with 3 moles of O₂

Then 24 mol of methanol reacts with - 3/2 x 24 = 36 mol of O₂ should be present

But only 15 mol of O₂ is present, therefore O₂ is the limiting reactant and methanol is in excess.

3 mol of O₂ reacts with 2 mol of CH₃OH

then 15 mol of O₂ reacts with 2/3 x 15 = 10 mol of CH₃OH

Excess reactant is methanol, 10 mol are used up therefore 24 - 10 mol = 14 mol are remaining at the end of the reaction