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Butane C4 H10 (g),(mc016-1.jpgHf = –125.7), combusts in the presence of oxygen to form CO2 (g) (mc016-2.jpgHf = –393.5 kJ/mol), and H2 O(g) (mc016-3.jpgHf = –241.82) in the reaction:
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Butane C4 H10 (g),(mc016-1.jpgHf = –125.7), combusts in the presence of oxygen to form CO2 (g) (mc016-2.jpgHf = –393.5 kJ/mol), and H2 O(g) (mc016-3.jpgHf = –241.82) in the reaction:

User Abdennacer Lachiheb
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1 Answer

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2 C4H10 + 13 O2 → 8 CO2 + 10H2O
Given, Heat of formation of C4H10 = = -125.7 kJ/molHeat of formation of water = = -241.82 kJ/molHeat of formation of CO2 = = -393.5 kJ/mol
Thus, enthalpy of combustion = ΔH = ∑Hproducts - ∑Hreactants = 8 + 10 - 2 = (-393.5X8) + (-241.82X10) - (-125.7X2) = -5314.8 kJ/mol
This energy would result in combustion of 2 moles of butane∴ For 1 mole, energy required for combustion of butane = -5314.8/2 = -2657.4 kJ/mol
User Victor York
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