EBK WEBASSIGN FOR KATZ'S PHYSICS FOR SC
EBK WEBASSIGN FOR KATZ'S PHYSICS FOR SC
1st Edition
ISBN: 9781337684668
Author: Katz
Publisher: VST
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Chapter 21, Problem 27PQ
To determine

The energy required to transform an ice cube to steam.

Expert Solution & Answer
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Answer to Problem 27PQ

The energy required to transform an ice cube to steam is 1.38×105J_.

Explanation of Solution

Given that the mas of the ice is 45.0g, the initial temperature of the ice is 5.00°C and the final temperature is 120.0°C.

The energy required to transform ice to steam is to be found. It is the sum of the energy required to reach the melting point, energy required to melt the ice, energy required to reach the boiling point, energy required to vaporize the water, and the energy required to raise the temperature of the vapour to 120.0°C.

Write the expression for energy required to reach the melting point of the ice.

  Q1=mci(TfTi)                                                                                                  (I)

Here, Q1 is the heat required to reach the melting point, m is the mass of ice, ci is the specific heat capacity of ice, Tf is the melting point of ice, and Tf is the initial temperature of the ice.

Write the expression for energy required for the melting of ice.

  Q2=mLf                                                                                                             (II)

Here, Q2 is the heat required for fusion of ice, and Lf is the latent heat of fusion of ice.

Write the expression for the energy required to reach the boiling point of water.

  Q3=mcw(TfTi)                                                                                             (III)

Here, Q3 is the heat required to reach the boiling point of water, cw is the specific heat of water, Tf is the boiling point of water, and Ti is the initial temperature of the water.

Write the expression for the energy required to vaporize the water at its boiling point.

  Q4=mLV                                                                                                       (IV)

Here, Q4 is the energy required to vaporize the water at its boiling point, and Lv is the latent heat of vaporization.

Write the expression for the heat energy required to raise the vapour to 120.0°C.

  Q5=mcv(TfTi)                                                                                     (V)

Here, Q5 is the heat energy required to raise the temperature of the vapour, cv is the specific heat capacity of the vapour or steam, Tf is the final temperature of the vapour, and Ti is the initial temperature of the vapour.

Write the expression for the total energy required to transform the ice to steam.

  Qt=Q1+Q2+Q3+Q4+Q5                                                                              (VI)

Conclusion:

Substitute 45.0g for m, 2100J/kg°C for ci, 0°C for Tf, and 5.00°C for Ti in equation (I) to find Q1.

  Q1=(45.0g)(2100J/kg°C)[0°C(5.00°C)]=(45.0g×1kg1000g)(2100J/kg°C)[0°C(5.00°C)]=472.5J

Substitute 45.0g for m, and 3.33×105J/kg for Lf in equation (II) to find Q2.

  Q2=(45.0g)(3.33×105J/kg)=(45.0g×1kg1000g)(3.33×105J/kg)=1.49×104J

Substitute 45.0g for m, 4190J/kg°C for cw, 100°C for Tf, and 0°C for Ti in equation (III) to find Q3.

  Q3=(45.0g)(4190J/kg°C)(100°C0°C)=(45.0g×1g1000kg)(4190J/kg°C)(100°C0°C)=1.86×104J

Substitute 45.0kg for m,and 2.26×106J/kg for Lv in equation (IV) to find Q4.

  Q4=(45.0g)(2.26×106J/kg)=45.0g×1kg1000g(2.26×106J/kg)=1.02×105J

Substitute 45.0g for m, 2010J/kg°C for cv, 120.0°C for Tf, and 100.0°C for Ti in equation (V) to find Q5.

  Q5=(45.0g)(2010J/kg°C)(120.0°C100.0°C)=(45.0g×1kg1000g)(2010J/kg°C)(120.0°C100.0°C)=1809J

Substitute 472.5J for Q1, 1.49×104J for Q2, 1.86×104J for Q3, 1.02×105J for Q4, 1809J for Q5 in equation (VI) to find Qt.

  Qt=472.5J+(1.49×104J)+(1.86×104J)+(1.02×105J)+1809J=1.38×105J

Therefore, the energy required to transform an ice cube to steam is 1.38×105J_.

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Chapter 21 Solutions

EBK WEBASSIGN FOR KATZ'S PHYSICS FOR SC

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