QUESTION IMAGE
Question
estimate the enthalpy change for the reaction $c_{2}h_{4}(g)+h_{2}(g)\to c_{2}h_{6}(g)$ given the following bond energies.
| bond | h-h | c-h | c-c | c=c |
|---|
-119 kj
-392 kj
+392 kj
+119 kj
+152 kj
Step1: Analyze bonds broken
For \(C_2H_4\), there is \(1\) \(C = C\) bond and \(4\) \(C - H\) bonds. For \(H_2\), there is \(1\) \(H - H\) bond.
Total energy for bonds broken:
$$
LATEXBLOCK0
$$
Step2: Analyze bonds formed
For \(C_2H_6\), there is \(1\) \(C - C\) bond and \(6\) \(C - H\) bonds.
Total energy for bonds formed:
$$
LATEXBLOCK1
$$
Step3: Calculate enthalpy change
Enthalpy change \(\Delta H=\) (Energy of bonds broken) - (Energy of bonds formed)
$$
LATEXBLOCK2
$$
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-119 kJ