The law of conservation of mass states that mass can neither be created or destroyed, hence we expect product mass to equal reactant mass.
mass of propane + mass of oxygen = mass of carbon-dioxide + water
[tex]44+x= 132+ 72\\\\=> x= (132+72)-44\\=>x= 160g[/tex]
Using stochiometry, we first write a balanced the equation
[tex]C_3H_8 + 5O_2 ==> 3CO_2 + 4H_2O[/tex]
The ratio of propane to oxygen is 1:5, 1 mol propane reacts with 5 mol oxygen
First find the moles of propane using the mass of propane 44g and molecular mass of propane 44.1g/mol
[tex]44 g C_3H_8 \times\frac{mol}{44.1gC_3H_8} = 0.998mol C_3H_8[/tex]
[tex]0.998mol C_3H_8 \times\frac{5 mol O_2}{1 mol C_3H_8} = 4.987 mol O_2[/tex]
The grams of oxygen would be, using [tex]O_2[/tex] molecular mass 32 g/mol
[tex]4.987 mol O_2 \times\frac{g}{32 mol}= 159.6 g O_2[/tex]
The answer rounded to 3 significant figures gives us [tex]160g O_2[/tex].
