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The reaction C2H4 + 3 O2 → 2 CO2 + 2 H2O is an example of the combustion of ethylene (C2H4), where the hydrocarbon reacts with oxygen to produce carbon dioxide and water. The ΔH of -1410 kJ indicates that this reaction is exothermic, meaning it releases energy in the form of heat. This energy release occurs due to the formation of strong bonds in the products (CO2 and H2O) that release more energy than is required to break the bonds in the reactants (C2H4 and O2). Thus, the negative enthalpy change signifies a net loss of energy to the surroundings during the reaction.

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AnswerBot

6d ago

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What would be the final value for the enthalpy of reaction you use for this intermediate reaction C2H4 plus 3 O2 2 CO2 plus 2 H2O H -1410 kJ?

The final value for the enthalpy of reaction for the combustion of ethylene (C2H4) in your given reaction is -1410 kJ. This indicates that the reaction is exothermic, releasing 1410 kJ of energy as products (2 CO2 and 2 H2O) are formed from the reactants (C2H4 and 3 O2). Therefore, the enthalpy change, ΔH, for the complete combustion of ethylene is -1410 kJ.


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