Answer:
1) Maximun ammount of nitrogen gas: [tex]m_{N2}=10.682 g N_2[/tex]
2) Limiting reagent: [tex]NO[/tex]
3) Ammount of excess reagent: [tex]m_{N2}=4.274 g[/tex]
Explanation:
The reaction
[tex]2 NO (g) + 2 H_2 (g) \longrightarrow N_2 (g) + 2 H_2O (g)[/tex]
Moles of nitrogen monoxide
Molecular weight: [tex]M_{NO}=30 g/mol[/tex]
[tex]n_{NO}=\frac{m_{NO}}{M_{NO}}[/tex]
[tex]n_{NO}=\frac{22.9 g}{30 g/mol}=0.763 mol[/tex]
Moles of hydrogen
Molecular weight: [tex]M_{H2}=2 g/mol[/tex]
[tex]n_{H2}=\frac{m_{H2}}{M_{H2}}[/tex]
[tex]n_{H2}=\frac{.5.8 g}{2 g/mol}=2.9 mol[/tex]
Mol rate of H2 and NO is 1:1 => hydrogen gas is in excess
1) Maximun ammount of nitrogen gas => when all NO reacted
[tex]m_{N2}=0.763 mol NO* \frac{1 mol N_2}{2 mol NO}*\frac{28 g N_2}{mol N_2}[/tex]
[tex]m_{N2}=10.682 g N_2[/tex]
2) Limiting reagent: [tex]NO[/tex]
3) Ammount of excess reagent:
[tex]m_{N2}=(2.9 mol - 0.763 mol NO* \frac{1 mol H_2}{1 mol NO})*\frac{2 g H_2}{mol H_2}[/tex]
[tex]m_{N2}=4.274 g[/tex]
