The overall reaction in commercial heat packs can be represented as 4Fe + 3O2 = 2Fe2O3 (s) ΔH = -1652 kJ a. How much heat is released when 4.00 moles of iron is reacted with excess oxygen? b. how much heat is released when 1.00 mole of Fe2O3 is produced? c. How much heat is released when 1.00 g of iron is reacted with excess oxygen?

World of Chemistry, 3rd edition
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ISBN:9781133109655
Author:Steven S. Zumdahl, Susan L. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan L. Zumdahl, Donald J. DeCoste
Chapter10: Energy
Section: Chapter Questions
Problem 63A
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The overall reaction in commercial heat packs can be represented as
4Fe + 3O2 = 2Fe2O3 (s) ΔH = -1652 kJ
a. How much heat is released when 4.00 moles of iron is reacted with excess oxygen?
b. how much heat is released when 1.00 mole of Fe2O3 is produced?
c. How much heat is released when 1.00 g of iron is reacted with excess oxygen?
d. how much heat is released with 10.0 g of Fe and 2.00 g O2 are reacted?

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