Respuesta :
CO(g) +2H2--->CH3OH
2.50g H2*1mol/2g=1.25 mol H2
30.0L CO*1mol/22.4L=1.34 mol CO,
according to reaction 1 mol CO needs 2 mol H2,so 1.34 mol CO need 2.68 mol H2, so 1) limiting teactant is H2 (H)
2)1.25 mol CH3OH will be produced, 1.25 mol*32g/mol=40.0 g CH3OH
3) 1.25 mol H2 needs 0.625 g CO
1.34-0.625=0.715 g CO leftover
2.50g H2*1mol/2g=1.25 mol H2
30.0L CO*1mol/22.4L=1.34 mol CO,
according to reaction 1 mol CO needs 2 mol H2,so 1.34 mol CO need 2.68 mol H2, so 1) limiting teactant is H2 (H)
2)1.25 mol CH3OH will be produced, 1.25 mol*32g/mol=40.0 g CH3OH
3) 1.25 mol H2 needs 0.625 g CO
1.34-0.625=0.715 g CO leftover
Answer 1 : The limiting reactant is, hydrogen gas, [tex]H_2[/tex]
Solution :
First we have to calculate the moles of hydrogen gas.
[tex]\text{Moles of }H_2=\frac{\text{Mass of }H_2}{\text{Molar mass of }H_2}=\frac{2.5g}{2g/mole}=1.25moles[/tex]
Now we have to calculate the volume of hydrogen gas.
As, 1 mole of gas contains 22.4 L volume of gas
So, 1.25 mole of hydrogen gas contains [tex]1.25\times 22.4=28L[/tex] volume of hydrogen gas
Now we have to calculate the limiting and excess reactant.
The given balanced reaction is,
[tex]CO(g)+2H_2(g)\rightarrow CH_3OH(l)[/tex]
From the balanced reaction, we conclude that
As, 44.8 L of hydrogen gas react with 22.4 L of carbon monoxide gas
So, 28 L of hydrogen gas react with [tex]\frac{22.4L}{44.8L}\times 28L=14L[/tex] of carbon monoxide gas
The excess carbon monoxide = 30 L - 14 L = 16 L
Thus, the carbon monoxide is an excess reactant because it is present in excess amount and hydrogen gas is a limiting reactant because it is present in limited amount.
Answer 2 : The mass of [tex]CH_3OH[/tex] is, 20 grams
Solution :
From the balance reaction, we conclude that
2 moles of hydrogen gas react to give 1 mole of [tex]CH_3OH[/tex]
1.25 moles of hydrogen gas react to give [tex]\frac{1.25}{2}=0.625[/tex] mole of [tex]CH_3OH[/tex]
Now we have to calculate the mass of [tex]CH_3OH[/tex]
[tex]\text{Mass of }CH_3OH=\text{Moles of }CH_3OH\times \text{Molar mass of }CH_3OH[/tex]
[tex]\text{Mass of }CH_3OH=(0.625mole)\times (32g/mole)=20g[/tex]
The mass of [tex]CH_3OH[/tex] is, 20 grams
Answer 3 : The amount of excess reactant is, 20 grams
The excess reactant is carbon monoxide.
As, 22.4 L volume of carbon monoxide gas has 28 gram of carbon monoxide gas
So, 16 L volume of carbon monoxide gas has [tex]\frac{28}{22.4}\times 16=20[/tex] gram of carbon monoxide gas
Thus, the The amount of excess reactant is, 20 grams
