The heat of combustion of ethylene at `18^(@)C` and at constant volume is `-330.0 kcal` when water is obtained in liquid state. Calculate the heat of combustion at constant pressure and at `18^(@)C`?

The heat of combustion of ethylene at `18^(@)C` and at constant volume

1.	The heat of combustion of ethylene at `18^(@)C` and at constant volume is `-330.0 kcal` when water is obtained in liquid state. Calculate the heat of combustion at constant pressure and at `18^(@)C`?
Answer» The chemical equation for the combustion of `C_(2)H_(4)` is `{:(C_(2)H_(4)(g)+,3O_(2)(g)=,2CO_(2)(g)+,2H_(2)O(l),DeltaU^(Theta) =- 330.8kcal,),(1mol,3mol,2mol,,):}` Number of moles of reactants `= (1+3) = 4` Number of moles pf products `= 2` So, `Deltan = (2-4) =- 2` Given `DeltaU^(Theta) =- 330.0 kcal, Deltan =- 2, R = 2 xx 10^(-3) kcal` and `T = (18 +273) = 291 K` Applying `DeltaH^(Theta) = DeltaU^(Theta) + DeltanRT` `=- 330.0 + (-2) (2 xx 10^(-3)) (291)` `=- 331.164 kcal`

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The heat of combustion of ethylene at `18^(@)C` and at constant volume is `-330.0 kcal` when water is obtained in liquid state. Calculate the heat of combustion at constant pressure and at `18^(@)C`?

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