Calcium carbide (CaC2) reacts with water to form acetylene (C2H2) and Ca(OH)2.
From the following enthalpy of reaction data and data in Appendix C, calculate ΔH∘f for CaC2(s):
CaC2(s)+2H2O(l)→Ca(OH)2(s)+C2H2(g)ΔH∘=−127.2kJ
ΔH∘f = kj?

Thank you for posting your question here. The answer is -60.57. With appropriate sig figs it becomes -60.6 KJ.

Maybe it's easier if I write what I did out:

2H2O > 2H2 +O2...............-H= 2* -285.83
Ca + O2 + H2 > Ca(OH)2....H= -986.2
2C + H2 > C2H2.................H= 226.77

The above H's stand for standard enthalpy of formations. These can be found in textbook appendix. Notice the negative infront of the enthalpy (H) for H2O. This is to remind me/you that the heat lost is gained in the rxn.

So then you add them up. 226.77 - 986.2 + (2*285.83) = -187.77

Add back the total enthalpy that is given in the question -187.77+127.2 = -60.57

If signs cross you up find a way to remember that works for you.

Calcium carbide (CaC2) reacts with water to form acetylene (C2H2) and Ca(OH)2. From the following enthalpy of reaction data and data in Appendix C, calculate ΔH∘f for CaC2(s): CaC2(s)+2H2O(l)→Ca(OH)2(s)+C2H2(g)ΔH∘=−127.2kJ ΔH∘f = kj?

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Calcium carbide (CaC2) reacts with water to form acetylene (C2H2) and Ca(OH)2.
From the following enthalpy of reaction data and data in Appendix C, calculate ΔH∘f for CaC2(s):
CaC2(s)+2H2O(l)→Ca(OH)2(s)+C2H2(g)ΔH∘=−127.2kJ
ΔH∘f = kj?