Answer:
a) 78.19 grams H2O
b) 14.3 grams acetylene
Step-by-step explanation:
Step 1: Data given
Molar mass of acetylene = 26.04 g/mol
Molar mass of H2O = 18.02 g/mol
Step 2: The balanced equation
2C2H2 + 5O2 → 4CO2 + 2H2O
Step 3: a. How many grams of water can form if 113g of acetylene is burned?
Calculate moles of acetylene:
Moles = mass / molar mass
Moles = 113.0 grams / 26.04 g/mol
Moles = 4.339 moles
calculate moles of H2O
For 2 moles acetylene we need 5 moles O2 to produce 4 moles CO2 and 2 moles H2O
For 4.339 moles of acetylene we'll have 4.339 moles H2O
Calculate mass of H2O
Mass H2O = 4.339 moles * 18.02 g/mol
Mass H2O = 78.19 grams H2O
b. How many grams of acetylene react if 1.10 mol of CO2 are produced?
For 2 moles acetylene we need 5 moles O2 to produce 4 moles CO2 and 2 moles H2O
For 1.10 mol CO2 we need 1.10/2 = 0.55 moles of acetylene
Mass acetylene = 0.55 moles * 26.04 g/mol
Mass acetylene = 14.3 grams acetylene