World of Chemistry
World of Chemistry
7th Edition
ISBN: 9780618562763
Author: Steven S. Zumdahl
Publisher: Houghton Mifflin College Div
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Chapter 14.1, Problem 7RQ
Interpretation Introduction

Interpretation: With thegiven information the heat energy required to change 1.00 mol of ice at 10.0 C to water at 15 C is to be calculated.

Concept introduction:In going from ice at 10.0C to water at 15C , heat energy is required which can be calculated as follows:

Heat = mass of ice × specific heat of ice × temperature change + number of moles of ice ×molar heat of fusion +mass of water × specific heat of water × temperature change

Expert Solution & Answer
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Answer to Problem 7RQ

The heat energy required to change 1.00 mol of ice at 10.0C to water at 15C is 7515.08 J .

Explanation of Solution

In going from ice at 10.0C to water at 15C , heat energy is required which can be calculated as follows:

Heat = mass of ice × specific heat of ice × temperature change + number of moles of ice ×molar heat of fusion +mass of water × specific heat of water × temperature change

It is given that,

  specific heat of ice=2.03 J/g oC,specific heat of water=4.184 J/g oC andmolar heat of fusion=6.02 kJ/mol

The molar mass of ice = 18 g/mol and Temperature change = Final temperature − Initial temperature.

Calculation:

  Q=18 g×2.03 J/g×oC×(0 oC-(-10.0 oC))+1 mol×6.02 kJ/mol+18 g×4.184 J/goC×(15 oC-0 oC)

    =365.4 J+6.02 kJ+1129.68 J

    =365.4 J+6020 J+1129.68 J

    =7515.08 J

Conclusion

Heat energy required to change 1.00 mol of ice at 10.0 oC to water at 15 oC is 7515.08 J .

Chapter 14 Solutions

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