EBK FUNDAMENTALS OF THERMAL-FLUID SCIEN
EBK FUNDAMENTALS OF THERMAL-FLUID SCIEN
5th Edition
ISBN: 9781259151323
Author: CENGEL
Publisher: MCGRAW HILL BOOK COMPANY
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Question
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Chapter 17, Problem 62P

(a)

To determine

The rate of heat transfer through the wall made of solid bricks.

(a)

Expert Solution
Check Mark

Explanation of Solution

Given:

Thickness of the wall is 10 in.

Height of the wall is 10 ft.

Length of the wall is 30 ft.

Thermal conductivity of the solid bricks is 0.40Btu/hft°F.

Cross section of the solid brick is 7 in×7 in.

Thermal conductivity of the bricks with air holes is 0.015Btu/hft°F.

Cross section of the brick used with air holes is 1.5 in×1.5 in.

Length of the bricks is 9 in.

Thickness of plaster is 0.5 in.

Thermal conductivity of the plaster is 0.010Btu/hft°F.

Indoor temperature is 80°F.

Outdoor temperature is 30°F.

The inside heat transfer coefficient is 1.5Btu/hft2°F.

The outside heat transfer coefficient is 4Btu/hft2°F.

Calculation:

The total thermal resistance of the arrangement is,

  Rtotal=Rconv,1+2Rplaster+Rmid+Rconv,2=1h1A+2L1kplasterA+1L2kplasterA+L2kplasterA+L2kbrickA+1h2A={1(1.5Btu/hft2°F)(7.512 ft)2+2(0.5/12 ft)(0.010Btu/hft°F)(7.512 ft)2+1(4Btu/hft2°F)(7.512 ft)2+1[9/12ft(0.010Btu/hft°F)(7.512ft×0.512ft)+9/12ft(0.010Btu/hft°F)(712ft×0.512ft)+9/12ft(0.40Btu/hft°F)(712ft)2]}=9.7937h°F/Btu

The rate of heat transfer through the wall per 0.3906 ft2 is,

  Q˙=T1T2Rtotal=[8030]°F9.7937h°F/Btu=5.105Btu/h

The total rate of heat transfer through the entire wall is,

  Q˙total=(5.105Btu/h)(30×10 ft20.3906 ft2)=3921Btu/h

Thus, the rate of heat transfer through the wall made of solid bricks is 3921Btu/h.

(b)

To determine

The rate of heat transfer through the wall made of bricks with air holes.

(b)

Expert Solution
Check Mark

Explanation of Solution

Calculation:

The total thermal resistance of the arrangement is,

  Rtotal=Rconv,1+2Rplaster+Rmid+Rconv,2=1h1A+2L1kplasterA+1L2kplasterA+L2kplasterA+L2kairA+L2kbrickA+1h2A={1(1.5Btu/hft2°F)(7.512 ft)2+2(0.5/12 ft)(0.010Btu/hft°F)(7.512 ft)2+1(4Btu/hft2°F)(7.512 ft)2+1[9/12ft(0.010Btu/hft°F)(7.512ft×0.512ft)+9/12ft(0.010Btu/hft°F)(712ft×0.512ft)+9/12ft(0.40Btu/hft°F)[(712ft)29(1.512ft)2]+9/12ft(0.15Btu/hft°F)[9(1.512ft)2]]}=13.098h°F/Btu

The rate of heat transfer through the wall per 0.3906 ft2 is,

  Q˙=T1T2Rtotal=[8030]°F13.098h°F/Btu=3.817Btu/h

The total rate of heat transfer through the entire wall is,

  Q˙total=(3.817Btu/h)(30×10 ft20.3906 ft2)=2932Btu/h

Thus, the rate of heat transfer through the wall made of bricks with air holes is 2932Btu/h.

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Chapter 17 Solutions

EBK FUNDAMENTALS OF THERMAL-FLUID SCIEN

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