WebAssign Printed Access Card for Serway/Vuille's College Physics, 11th Edition, Multi-Term
WebAssign Printed Access Card for Serway/Vuille's College Physics, 11th Edition, Multi-Term
11th Edition
ISBN: 9781337763486
Author: Raymond A. Serway, Chris Vuille
Publisher: Cengage Learning
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Chapter 11, Problem 44P

The thermal conductivities of human tissues vary greatly. Fat and skin have conductivities of about 0.20 W/m · K and 0.020 W/m · K, respectively, while other tissues inside the body have conductivities of about 0.50 W/m · K. Assume that between the core region of the body and the skin sin face lies a skin layer of 1.0 mm, fat layer of 0.50 cm, and 3.2 cm of other tissues. (a) Find the R-factor for each of these layers, and the equivalent R-factor for all layers taken together, retaining two digits. (b) Find the rate of energy loss when the core temperature is 37°C and the exterior temperature is 0°C. Assume that both a protective layer of clothing and an insulating layer of unmoving air a absent, and a body area of 2.0 m2.

(a)

Expert Solution
Check Mark
To determine
The R factor for skin, fat, and tissue.

Answer to Problem 44P

The R factor for skin, fat, and tissue is 5.0×102m2K/W , 2.5×102m2K/W , and 6.4×102m2K/W respectively.

Explanation of Solution

Section1:

To determine: TheR factor for skin.

Answer: TheR factor for skin is 5.0×102m2K/W

Explanation:

Given info: Thickness of the skin is 1.0 mm and thermal conductivity is 0.20W/mK .

Formula to calculate R factor  for skin is,

Rskin=Lskinkskin

  • Rskin is the R factor for skin,
  • Lskin is the thickness of the skin,
  • kskin is the thermal conductivity of the skin,

Substitute 1.0 mm for Lskin and  0.20W/mK for kskin to find Rskin .

Rskin=1.0mm(1m103mm)0.20W/mK=5.0×102m2K/W

Therefore, the R factor for the skin is 5.0×102m2K/W

Section2:

To determine: TheR factor for fat layer.

Answer: TheR factor for fat layer is 2.5×102m2K/W

Explanation:

Given info: Thickness of the fat layer is 0.50 cm and thermal conductivity of fat layer is 0.02W/mK .

Formula to calculate R factor for fat layer is,

Rfat=Lfatkfat

  • Rfat is the R factor for fat layer,
  • Lfat is the thickness of the fat layer,
  • kfat is the thermal conductivity of the fat layer,

Substitute 0.50 cm for Lfat and  0.20W/mK for kfat to find Rskin .

Rskin=0.50cm(1m102cm)0.02W/mK=2.5×102m2K/W

Therefore, the R factor for the fat layer is 2.5×102m2K/W

Section3:

To determine: TheR factor for tissue.

Answer: TheR factor for tissue is 6.4×102m2K/W

Explanation:

Given info: Thickness of the tissue is 3.2 cm and thermal conductivity of tissue is

0.50W/mK .

Formula to calculate R factor for tissue is,

Rtissue=Ltissuektissue

  • Rtissue is the R factor for tissue,
  • Ltissue is the thickness of the tissue,
  • ktissue is the thermal conductivity of the tissue,

Substitute 3.2 cm for Ltissue and  0.50W/mK for ktissue to find Rtissue .

Rtissue=3.2cm(1m102cm)0.50W/mK=6.4×102m2K/W

Therefore, the R factor for the tissue is 6.4×102m2K/W

Conclusion:

Therefore, the R factor for skin, fat, and tissue is 5.0×102m2K/W , 2.5×102m2K/W , and 6.4×102m2K/W respectively.

(b)

Expert Solution
Check Mark
To determine
The rate of energy loss from the body.

Answer to Problem 44P

The rate of energy loss from the body is 5.3×102W

Explanation of Solution

Given info:  The surface area of the body is 2.0m2 , temperature of the core is 37°C , and exterior temperature is 0°C .

The R factor of the body is the sum of R factor of skin, fat layer and tissue.

Rbody=Rskin+Rfat+Rtissue

Formula to calculate the rate at which energy is transferred by conduction from the body is,

P=A(ThTc)Rbody

  • P is the rate at which energy is transferred by conduction from the body,
  • Rbody is the R factor of the body,
  • A is the surface area of the body,
  • Th is core temperature,
  • Tc is exterior temperature,

Use Rskin+Rfat+Rtissue for Rbody in P=A(ThTc)Rbody to rewrite P.

P=A(ThTc)Rskin+Rfat+Rtissue

Substitute 2.0m2 for A, 0°C for Tc , 5.0×102m2K/W for Rskin , 2.5×102m2K/W for Rfat , and 6.4×102m2K/W for Rtissue and 37°C for Th to find P.

P=(2.0m2)[(37+273)K(0+273)K]5.0×102m2K/W+2.5×102m2K/W+6.4×102m2K/W=5.3×102W

Conclusion:

Therefore, the rate at which energy is transferred through body is 5.3×102W .

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Chapter 11 Solutions

WebAssign Printed Access Card for Serway/Vuille's College Physics, 11th Edition, Multi-Term

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