Be sure to answer all parts.   Deterioration of buildings, bridges, and other structures through the rusting of iron costs millions of dollars every day. Although the actual process also requires water, a simplified equation (with rust shown as Fe2O3) is:   4 Fe(s) + 3 O2(g) →2 Fe2O3(s)   ΔHrxn = −1.65 × 103 kJ (a) What is the ΔHrxn when 0.250 kg of iron rusts? (b) How much rust forms when 4.20 ×103 kJ of heat is released?

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Chapter6: Thermochemisty
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Be sure to answer all parts.
 
Deterioration of buildings, bridges, and other structures through the rusting of iron costs millions of dollars every day. Although the actual process also requires water, a simplified equation (with rust shown as Fe2O3) is:
 
4 Fe(s) + 3 O2(g) →2 Fe2O3(s)
 
ΔHrxn = −1.65 × 103 kJ


(a) What is the ΔHrxn when 0.250 kg of iron rusts?

(b) How much rust forms when 4.20 ×103 kJ of heat is released?

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