Volume in liters of Carbon dioxide : 0.672
Further explanation
Reaction(combustion of butane-C₄H₁₀)
2C₄H₁₀+13O₂⇒8CO₂+10H₂O
mol butane (MW=58,12 g/mol) :
[tex]\tt \dfrac{0.85}{58,12}=0.015[/tex]
mol CO₂ : mol C₄H₁₀ = 8 : 4, so mol CO₂ :
[tex]\tt \dfrac{8}{4}\times 0.015=0.03[/tex]
At STP, 1 mol = 22.4 L, so volume CO₂ :
[tex]\tt 0.03\times 22.4~L=0.672~L[/tex]
