Octane (112.224 g/mol) undergoes combustion to form carbon dioxide gas and water vapor: 2 C8H18 (l) + 25 O2 (g) → 16 CO2 (g) + 18 H2O (g) ΔH°rxn = -1.01 x 105 kJ Given that the density of octane is 0.703 g/mL, what volume of octane must undergo combustion to produce 524 kJ of heat?

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Octane (112.224 g/mol) undergoes combustion to form carbon dioxide gas and water vapor:

2 C8H18 (l) + 25 O2 (g) → 16 CO2 (g) + 18 H2O (g) ΔH°rxn = -1.01 x 105 kJ

Given that the density of octane is 0.703 g/mL, what volume of octane must undergo combustion to produce 524 kJ of heat?

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