Introduction To Chemistry 5th Edition
Introduction To Chemistry 5th Edition
5th Edition
ISBN: 9781260162097
Author: BAUER
Publisher: MCG
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Chapter 10, Problem 38QP
Interpretation Introduction

Interpretation:

The heat released when steam is converted into ice is to be calculated.

Concept Introduction:

Phase change is the process by which ice is converted into steam. Each phase change occurs at a constant temperature along with a change in energy. This change in energy is called the heat of that process, q .

The heat absorbed or released by a substance is calculated by the following equation:

q=m×C×ΔT ……(1)

Here, m is the mass, ΔT is the temperature change, and C is the specific heat capacity.

The expression to calculate the value of ΔT :

ΔT=T2T1 …..(2)

Here T1 is the initial temperature and T2 is the final temperature.

Substitute (2) in (1)

q=m×C×T2T1 ……(3)

Expert Solution & Answer
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Answer to Problem 38QP

Solution:

The heat released in the process of converting steam to ice is 98.27 kJ .

Explanation of Solution

Given Information: Mass of steam is 32.0 g , the temperature of steam is 115.0°C , the

specific heat of ice is 2.03 J g1°C1 , the heat of fusion of ice is 6.01×103 J mol1 , the

the specific heat of water is 4.18 J g1°C1 , the heat of vaporization of water is 4.07×104 J mol1 and the specific heat of steam is 2.02 J g1°C1 .

Calculate the heat lost on cooling steam from 115.0°C to 100.0°C .

Using equation (3) to calculate the heat required to cool the temperature of ice from 115°C to 100°C .

Substitute 32 g for m , 2.03 J g1°C1 for C as the specific heat of ice, 100°C for T2 and 115°C for T1 in equation (3):

q1=32 g×2.03 J g1°C1×100°C115°C=969.6 J

Calculate the heat lost to condense steam to water by multiplying the molar heat of condensation by the number of moles, n .

q2=n× molar heat of vaporization=32 g18.02 g mol1 ×4.07×104J mol1=72275.25 J

Using equation (3) to calculate the heat required to cool the temperature of water from 100°C to 0°C .

Substitute 32 g for m , 4.18 J g1°C1 for C as the specific heat of ice, 0.0°C for T2 and 100°C for T1 in equation (3):

q3=32 g×4.18 J g1°C1×0.0°C100.0°=13376 J

Now, calculate the heat lost on the freezing of water by multiplying the molar heat of freezing by the number of moles.

q4=n× molar heat of fusion=32 g18.02 g mol1 ×6.01×103 J mol1=10672.59 J

Using equation (3) to calculate the heat required to cool the temperature of ice from 0°C to 15°C .

Substitute 32 g for m , 2.03 J g1°C1 for C as the specific heat of ice, 15°C for T2 and 0°C for T1 in equation (3):

q5=32 g×2.03 J g1°C1×15.0°C0.0°C= 974.4 J

Calculate the total heat released in the entire process by adding the heats lost for the individual steps as follows.

qtotal=q1+q2+q3+q4+q5969.6 J  72275.25 J  13376 J  10672.59 J  974.4 J98267.84 J98.27 kJ

The total heat released in the process is 98.27 kJ .

Conclusion

The total heat released in the process is 98.27 kJ .

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Chapter 10 Solutions

Introduction To Chemistry 5th Edition

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