The table above gives the
average bond strength for a variety of chemical bonds. Use these
values to calculate:
-The energy change (in kJ) for the combustion of 105.6 grams of propane?
-The energy change (in kJ) for the combustion of 2.65 grams of ethane using 13.70 grams of oxygen?
Homework Answers
Ans 1
Moles of propane = mass/molecular weight
= 105.6g / 44.1g/mol
= 2.395 mol
Combustion of propane
C3H8 + 5O2 = 3CO2 + 4 H2O
Enthalpy change
H = sum of Enthalpy change in bond formation - sum of Enthalpy change in bond broken
H = 2*(C--C) + 8*(C--H) + 5*(O=O) - 6*(C=O) - 8*(O--H)
= 2*(350) + 8*(415) + 5*(498) - 6*(804) - 8*(464)
= - 2026 kJ/mol
energy change (in kJ) for the combustion of 105.6 grams of propane
= - 2026 kJ/mol x 2.395 mol
= - 4852.27 kJ
Ans 2
Moles of C2H6 = 2.65g / 30.07g/mol
= 0.0881 mol
Moles of O2 = 13.70g / 32g/mol
= 0.4281 mol
2C2H6 + 7O2 = 4CO2 + 6H2O
From the stoichiometry of the reaction
2 mol C2H6 required = 7 mol O2
0.0881 mol C2H6 required = 7*0.0881/2 = 0.308 mol O2
C2H6 limiting reactant
H = 2*(C--C) + 12*(C--H) + 7*(O=O) - 8*(C=O) - 12*(O--H)
= 2*(350) + 12*(415) + 7*(498) - 8*(804) - 12*(464)
= - 2834 kJ/mol x 0.0881 mol C2H6
= - 249.75 kJ
Add Answer to:
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