Nitroglycerin, one of the most commonly used explosives, has the structure The decomposition reaction is 4 C 3 H 5 N 3 O 9 ( l ) → 12 CO 2 ( g ) + 10 H 2 O ( g ) + 6 N 2 ( g ) + O 2 ( g ) The explosive action is the result of the heat released and the large increase in gaseous volume. (a) Calculate the Δ H ° for the decomposition of one mole of nitroglycerin using both standard enthalpy of formation values and bond enthalpies. Assume that the two O atoms in the NO 2 groups are attached to N with one single bond and one double bond. (b) Calculate the combined volume of the gases at STP. (c) Assuming an initial explosion temperature of 3000 K, estimate the pressure exerted by the gases using the result from (b). (The standard enthalpy of formation of nitroglycerin is −371.1 kJ/mol.)
Nitroglycerin, one of the most commonly used explosives, has the structure The decomposition reaction is 4 C 3 H 5 N 3 O 9 ( l ) → 12 CO 2 ( g ) + 10 H 2 O ( g ) + 6 N 2 ( g ) + O 2 ( g ) The explosive action is the result of the heat released and the large increase in gaseous volume. (a) Calculate the Δ H ° for the decomposition of one mole of nitroglycerin using both standard enthalpy of formation values and bond enthalpies. Assume that the two O atoms in the NO 2 groups are attached to N with one single bond and one double bond. (b) Calculate the combined volume of the gases at STP. (c) Assuming an initial explosion temperature of 3000 K, estimate the pressure exerted by the gases using the result from (b). (The standard enthalpy of formation of nitroglycerin is −371.1 kJ/mol.)
Nitroglycerin, one of the most commonly used explosives, has the structure
The decomposition reaction is
4
C
3
H
5
N
3
O
9
(
l
)
→
12
CO
2
(
g
)
+
10
H
2
O
(
g
)
+
6
N
2
(
g
)
+
O
2
(
g
)
The explosive action is the result of the heat released and the large increase in gaseous volume. (a) Calculate the ΔH° for the decomposition of one mole of nitroglycerin using both standard enthalpy of formation values and bond enthalpies. Assume that the two O atoms in the NO2 groups are attached to N with one single bond and one double bond. (b) Calculate the combined volume of the gases at STP. (c) Assuming an initial explosion temperature of 3000 K, estimate the pressure exerted by the gases using the result from (b). (The standard enthalpy of formation of nitroglycerin is −371.1 kJ/mol.)
(a)
Expert Solution
Interpretation Introduction
Interpretation:
ΔH° for the decomposition of one mole of nitroglycerin has to be calculated using both bond enthalpy and standard enthalpy of formation values.
Concept Introduction:
ΔH° refers to change in enthalpy. Change in enthalpy in a reaction and bond energy (BE) are related as,
ΔH°=ΣBE(reactants)-ΣBE(products)
Change in enthalpy in a reaction and enthalpy of formation are related by the formula,
ΔHrxn°=ΣΔHf°(product)−ΣΔHf°(reactant)
Where,
ΔHrxn°= standardenthalpy change in reactionΔHf°(product)= standardenthalpy of formation of productΔHf°(reactant)= standardenthalpy of formation of reactant
Answer to Problem 9.142QP
ΔH° Calculated using enthalpy of formation values is −1413.9kJ/mol.
ΔH° Calculated using bond energy values is −1937kJ/mol.
Explanation of Solution
The decomposition reaction is,
4C3H5N3O9(l)→12CO2(g)+10H2O(g)+6N2(g)+O2(g)
Reduce the equation to show the decomposition of one mole of nitroglycerin.
Dividing by 4,
C3H5N3O9(l)→3CO2(g)+52H2O(g)+32N2(g)+14O2(g)
Calculation ofΔH° using enthalpy of formation values from appendix 3 of the text book:
"יוון
HO"
Br
CI
Check the box under each structure in the table that is an enantiomer of the molecule shown below. If none of them are, check the none of the above box under
the table.
Molecule 1
Molecule 2
Molecule 3
Br
Br
Br
HO
OH
H
CI
OH
✓
Molecule 4
Molecule 5
Molecule 6
CI
Br
יייון
H
Br
OH
OH
CI
Br
☐ none of the above
×
G
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