logo
logo
x
바코드검색
BOOKPRICE.co.kr
책, 도서 가격비교 사이트
바코드검색

인기 검색어

실시간 검색어

검색가능 서점

도서목록 제공

Heat Transfer: Evolution, Design and Performance

Heat Transfer: Evolution, Design and Performance (Hardcover)

Adrian Bejan (지은이)
Wiley
55,000원

일반도서

검색중
서점 할인가 할인률 배송비 혜택/추가 실질최저가 구매하기
55,000원 -0% 0원
1,650원
53,350원 >
yes24 로딩중
교보문고 로딩중
notice_icon 검색 결과 내에 다른 책이 포함되어 있을 수 있습니다.

중고도서

검색중
서점 유형 등록개수 최저가 구매하기
로딩중

eBook

검색중
서점 정가 할인가 마일리지 실질최저가 구매하기
로딩중

책 이미지

Heat Transfer: Evolution, Design and Performance
eBook 미리보기

책 정보

· 제목 : Heat Transfer: Evolution, Design and Performance (Hardcover) 
· 분류 : 외국도서 > 기술공학 > 기술공학 > 기계공학
· ISBN : 9781119467403
· 쪽수 : 608쪽
· 출판일 : 2022-04-05

목차

List of Symbols xvii

1 INTRODUCTION

1.1 Fundamental Concepts

1.1.1 Heat Transfer

1.1.2 Temperature

1.1.3 Specific Heats

1.2 The Objective of Heat Transfer

1.3 Conduction

1.3.1 The Fourier Law

1.3.2 Thermal Conductivity

1.3.3 Cartesian Coordinates

1.3.4. Cylindrical Coordinates

1.3.5 Spherical Coordinates

1.3.6 Initial and Boundary Conditions

1.4 Convection

1.5 Radiation

1.6 Performance

 1.6.1 Irreversible heating

 1.6.2 Reversible heating

References

Problems

2 UNIDIRECTIONAL STEADY CONDUCTION

2.1 Thin Walls

2.1.1 Thermal Resistance

2.1.2 Composite Walls

2.1.3 Overall Heat Transfer Coefficient

2.2 Cylindrical Shells

2.3 Spherical Shells

2.4 Critical Insulation Radius

2.5 Variable Thermal Conductivity

2.6Internal Heat Generation

2.7 Performance: Extended Surfaces (Fins)

2.7.1 The Enhancement of Heat Transfer

2.7.2 Constant Cross-Sectional Area

2.7.3 Variable Cross-Sectional Area

2.7.4 Scale Analysis:  When the Unidirectional Conduction Model is Valid

2.7.5 Fin Shape Subject to Volume Constraint

2.7.6 Heat Tube Shape 

References

Problems

 

3 MULTIDIRECTIONAL STEADY CONDUCTION

3.1  Analytical Solutions

3.1.1 Two-Dimensional Conduction in Cartesian Coordinates

3.1.2 Heat Flux Boundary Conditions

3.1.3 Superposition of Solutions

3.1.4 Cylindrical Coordinates

3.1.5 Three-Dimensional Conduction

3.2 Integral Method

3.3 The Method of Scale Analysis

3.4 Performance

3.4.1 Shape Factors

3.4.2 Trees: Volume-Point Flow

References

Problems

4 TIME-DEPENDENT CONDUCTION

4.1 Immersion Cooling or Heating

4.2 Lumped Capacitance Model (the “Late” Regime)

4.3 Semi-infinite Solid Model (the “Early” Regime)

4.3.1 Constant Surface Temperature

4.3.2 Constant Heat Flux Surface

4.3.3 Surface in Contact with Fluid Flow

4.4 Unidirectional Conduction

4.4.1 Plate

4.4.2 Cylinder

4.4.3 Sphere

4.4.4 Plate, Cylinder, and Sphere with Fixed Surface Temperature

4.5 Multidirectional Conduction

4.6 Concentrated Sources and Sinks

4.6.1 Instantaneous (One-Shot) Sources and Sinks

4.6.2 Persistent (Continuous) Sources and Sinks

4.6.3 Moving Heat Sources

4.7 Melting and Solidification

4.8 Performance

4.8.1 Spacings between Buried Heat Sources

4.8.2 The S-curve Growth of Spreading and Collecting

References

Problems

5 EXTERNAL FORCED CONVECTION

5.1 Classification of Convection Configurations

5.2 Basic Principles of Convection

5.2.1 Mass Conservation Equation

5.2.2 Momentum Equations

5.2.3 Energy Equation

5.3 Laminar Boundary Layer

5.3.1 Velocity Boundary Layer

5.3.2 Thermal Boundary Layer (Isothermal Wall)

5.3.3 Nonisothermal Wall

5.3.4 Film Temperature

5.4 Turbulent Boundary Layer

5.4.1 Transition from Laminar to Turbulent Flow

5.4.2 Time-Averaged Equations

5.4.3 Eddy Diffusivities

5.4.4 Wall Friction

5.4.5 Heat Transfer

5.5 Other External Flows

5.5.1 Single Cylinder

5.5.2 Sphere

5.5.3 Other Body Shapes

5.5.4 Arrays of Cylinders

5.5.5 Turbulent Jets

5.6 Performance

5.6.1 Size of Object with Heat Transfer

5.6.2 Evolution of Size

5.6.3 Visualization: Heatlines

References

Problems

6 INTERNAL FORCED CONVECTION

6.1 Laminar Flow Through a Duct

6.1.1 Entrance Region

6.1.2 Fully Developed Flow Region

6.1.3 Friction Factor and Pressure Drop

6.2 Heat Transfer in Laminar Flow

6.2.1 Thermal Entrance Region

6.2.2 Thermally Fully Developed Region

6.2.3 Uniform Wall Heat Flux

6.2.4 Isothermal Wall

6.3 Turbulent Flow

6.3.1 Transition, Entrance Region, and Fully Developed Flow

6.3.2 Friction Factor and Pressure Drop

6.3.3 Heat Transfer Coefficient

6.4 Total Heat Transfer Rate

6.5 Performance

6.5.1 Size of Duct with Fluid Flow

6.5.2 Tree-shaped Ducts

6.5.3 Spacings

6.5.4 Packaging for Maximum Heat Transfer Density

References

Problems

7 NATURAL CONVECTION

7.1 What Drives Natural Convection?

7.2 Boundary Layer Flow on Vertical Wall

7.2.1 Boundary Layer Equations

7.2.2 Scale Analysis of the Laminar Regime

7.2.3 Isothermal Wall

7.2.4 Transition and the Effect of Turbulence

7.2.5 Uniform Heat Flux

7.3 Other External Flows

7.3.1 Thermally Stratified Reservoir

7.3.2 Inclined Walls

7.3.3 Horizontal Walls

7.3.4 Horizontal Cylinder

7.3.5 Sphere

7.3.6 Vertical Cylinder

7.3.7 Other Immersed Bodies

7.4 Internal Flows

7.4.1 Vertical Channels

7.4.2 Enclosures Heated from the Side

7.4.3 Enclosures Heated from Below

7.4.4 Inclined Enclosures

7.4.5 Annular Space Between Horizontal Cylinders

7.4.6 Annular Space Between Concentric Spheres

7.5 Performance

7.5.1 Spacings

7.5.2 Miniaturization  

References

Problems

8CONVECTION WITH CHANGE OF PHASE

8.1 Condensation

8.1.1 Laminar Film on Vertical Surface

8.1.2 Turbulent Film on Vertical Surface

8.1.3 Film Condensation in Other Configurations

8.1.4 Dropwise and Direct-Contact Condensation

8.2 Boiling

8.2.1 Pool Boiling

8.2.2 Nucleate Boiling and Peak Heat Flux

8.2.3 Film Boiling and Minimum Heat Flux

8.2.4 Flow Boiling

8.3 Performance

8.3.1 Latent Heat Storage

8.3.2 Shaping Inserts for Faster Melting

8.3.3 Rhythmic Surface Renewal

References

Problems

9 HEAT EXCHANGERS

9.1 Classification of Heat Exchangers

9.2 Overall Heat Transfer Coefficient

9.3 Log-Mean Temperature Difference Method

9.3.1 Parallel Flow

9.3.2 Counterflow

9.3.3 Other Flow Arrangements

9.4 Effectiveness – NTU Method

9.4.1 Effectiveness and Limitations Posed by the Second Law

9.4.2 Parallel Flow

9.4.3 Counterflow

9.4.4 Other Flow Arrangements

9.5 Pressure Drop

9.5.1 Pumping Power

9.5.2 Abrupt Contraction and Enlargement

9.5.3 Acceleration and Deceleration

9.5.4 Tube Bundles in Cross-Flow

9.5.5 Compact Heat Exchanger Surfaces

9.6 Performance

9.6.1 Entrance Length Heat Exchangers

9.6.2 Dendritic Heat Exchangers

9.6.3 Heat Exchanger Size

9.6.4 Heat Tubes with Convection

References

Problems

10 RADIATION

10.1 Introduction

10.2 Blackbody Radiation

10.2.1 Definitions

10.2.2 Temperature and Energy

10.2.3 Intensity

10.2.4 Emissive Power

10.3 Heat Transfer Between Black Surfaces

10.3.1 Geometric View Factor

10.3.2 Relations Between View Factors

10.3.3 Two-Surface Enclosures

10.4 Diffuse-Gray Surfaces

10.4.1 Emissivity

10.4.2 Absorptivity and Reflectivity

10.4.3 Kirchhoff’s Law

10.4.4 Two-Surface Enclosures

10.4.5 Enclosures with More Than Two Surfaces

10.5 Participating Media

10.5.1 Volumetric Absorption

10.5.2 Gas Emissivities and Absorptivities

10.5.3 Gas Surrounded by Black Surface

10.5.4 Gray Medium Surrounded by Diffuse-Gray Surfaces

10.6 Performance

10.6.1 Terrestrial Solar Power

10.6.2 Extraterrestrial Solar Power

10.6.3 Climate

 

References

Problems

Appendixes

A  Constants and Conversion Factors

 B Properties of Solids

 C Properties of Liquids

 D Properties of Gases

 E Mathematical Formulas

 F Local Reynolds Number Transition Criterion

G   Extremum Subject to Constraint

Author Index

Subject Index

이 포스팅은 쿠팡 파트너스 활동의 일환으로,
이에 따른 일정액의 수수료를 제공받습니다.
이 포스팅은 제휴마케팅이 포함된 광고로 커미션을 지급 받습니다.
도서 DB 제공 : 알라딘 서점(www.aladin.co.kr)
최근 본 책