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

인기 검색어

일간
|
주간
|
월간

실시간 검색어

검색가능 서점

도서목록 제공

Electromagnetics and Transmission Lines: Essentials for Electrical Engineering

Electromagnetics and Transmission Lines: Essentials for Electrical Engineering (Hardcover, 2)

Robert Alan Strangeway, Steven Sean Holland, James Elwood Richie (지은이)
John Wiley and Sons Ltd
59,000원

일반도서

검색중
서점 할인가 할인률 배송비 혜택/추가 실질최저가 구매하기
59,000원 -0% 0원
1,770원
57,230원 >
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

Electromagnetics and Transmission Lines: Essentials for Electrical Engineering
eBook 미리보기

책 정보

· 제목 : Electromagnetics and Transmission Lines: Essentials for Electrical Engineering (Hardcover, 2) 
· 분류 : 외국도서 > 과학/수학/생태 > 과학 > 물리학 > 전자기학
· ISBN : 9781119881902
· 쪽수 : 304쪽
· 출판일 : 2022-11-08

목차

Preface xiii

Acknowledgments xvii

About the Authors xix

About the Companion Website xxi

1 Vectors, Vector Algebra, and Coordinate Systems 1

1.1 Vectors 1

1.2 Vector Algebra 4

1.2.1 Dot Product 4

1.2.2 Cross Product 7

1.3 Field Vectors 10

1.4 Cylindrical Coordinate System, Vectors, and Conversions 12

1.4.1 Cartesian (Rectangular) Coordinate System: Review 12

1.4.2 Cylindrical Coordinate System 13

1.5 Spherical Coordinate System, Vectors, and Conversions 19

1.6 Summary of Coordinate Systems and Vectors 25

1.7 Homework 27

Part 1 Static Electric and Magnetic Fields 31

2 The Superposition Laws of Electric and Magnetic Fields 33

2.1 Point Electric Charges, Coulomb’s Law, and Electric Fields 34

2.2 Electric Charge Distributions and Charge Density 37

2.3 Coulomb’s Law in Integral Form and Examples 38

2.4 Introduction to Magnetostatics and Current Density 47

2.5 Biot–Savart Law and Examples for Line Currents 50

2.6 Summary of Important Equations 56

2.7 Homework 56

3 The Flux Laws of Electric and Magnetic Fields 61

3.1 An Intuitive Development of Electric Flux and Gauss’s Law 62

3.1.1 A First Look at Electric Flux Density 62

3.1.2 Electric Flux and Gauss’s Law 63

3.2 Practical Determination of Electric Fields Using Gauss’s Law 65

3.3 Determination of Charge from Electric Fields 73

3.4 Magnetic Flux 74

3.5 Summary of Important Equations 78

3.6 Homework 78

4 The Path Laws and Circuit Principles 83

4.1 Electric Potential (Voltage) and Kirchhoff’s Voltage Law 84

4.1.1 Potential–Electric Field Relationship 84

4.1.2 Kirchhoff’s Voltage Law (KVL) 86

4.1.3 Dielectric–Conductor Electric Field Boundary Conditions 86

4.2 Capacitance 87

4.2.1 Determination of Capacitance 88

4.2.2 Dielectrics and Permittivity 90

4.2.3 Energy Storage in Electric Fields 93

4.3 Resistance 94

4.4 Ampere’s Circuital Law (ACL) 96

4.4.1 An Intuitive Development of ACL 96

4.4.2 Using ACL to Determine H 97

4.5 Inductance 100

4.5.1 Determination of Inductance 100

4.5.2 Magnetic Materials and Permeability 102

4.5.3 Magnetic Field Boundary Conditions 103

4.5.4 Energy Storage in a Magnetic Field 105

4.6 Summary of Important Equations 106

4.7 Appendices 106

Appendix 4.A Dielectric–Dielectric Electric Field Boundary Conditions 106

Appendix 4.B Development of Relative Permittivity 108

Appendix 4.C Development of Resistance 109

Appendix 4.D Introduction to Magnetic Circuits 111

4.8 Homework 113

Problems for Appendix 4.D 117

Part 2 Time-Changing Electric and Magnetic Fields 119

5 Maxwell’s Equations 121

5.1 Introduction to Time-Changing Electromagnetic Fields 121

5.2 Faraday’s Law 123

5.2.1 Lorentz Force Law and Induced Voltage 123

5.2.2 Time-Changing Magnetic Fields 125

5.2.3 Another Look at Kirchhoff’s Voltage Law 127

5.2.4 Another Look at the Inductor 128

5.2.5 The Ideal Transformer 129

5.2.6 Mutual Inductors 130

5.3 Displacement Current 133

5.3.1 Time-Changing Electric Fields 133

5.3.2 Another Look at the Capacitor 134

5.3.3 Mutual Capacitance 135

5.4 Chapter Summary: Maxwell’s Equations in Integral Form 136

5.5 Appendices 137

Appendix 5.A A Faraday’s Law Thought Experiment 137

Appendix 5.B Maxwell’s Equations in Differential Form 138

Appendix 5.C Continuity Equation and KCL 141

5.6 Homework 142

6 Transmission Lines: Waves and Reflections 145

6.1 Transient Waves in DC Circuits 146

6.1.1 Propagation of Waves in DC Circuits 146

6.1.2 Reflection of Waves in DC Circuits 148

6.2 Introduction to AC Wave Phenomena 153

6.2.1 Traveling Waves 153

6.2.2 Wavelength and Distance Considerations 155

6.2.3 Electromagnetic (EM) Fields on a Transmission Line 156

6.3 Reflections in AC Transmission Line Circuits 158

6.3.1 Reflected Waves and Measures of Reflection 158

6.3.2 Smith Chart: Impedance and Measures of Reflection 161

6.4 Scattering Parameters (S-parameters) 166

6.4.1 Power, Gain, and Loss 167

6.4.2 S-parameter Definitions 170

6.4.3 S-Parameter Examples 173

6.4.4 Vector Network Analyzer 174

6.5 Summary of Important Equations 177

6.6 Appendix: dBm “Dos” and dBm “Don’ts” 177

6.7 Homework 178

7 Transmission Lines: Theory and Applications 183

7.1 A Circuit Model for AC Transmission Lines 184

7.2 Voltage and Current Solutions for a Lossless Transmission Line 186

7.3 Interpreting the Voltage and Current Solutions 188

7.4 Lossy Transmission Line Solutions 192

7.5 Practical Transmission Line Calculations and Insights 193

7.5.1 Transmission Line Impedance Expression 193

7.5.2 Special Case of Lossless Transmission Lines 195

7.5.3 Standing Wave Patterns 196

7.5.4 Reflection Coefficient vs. Position 198

7.6 Smith Chart Revisited: Electrical Distance 199

7.6.1 Rotation on the Smith Chart – an Electrical Distance Perspective 199

7.6.2 Lossy Transmission Line Traces on a Smith Chart 202

7.7 Determining Load Impedance from Input Impedance 203

7.8 Summary of Important Equations 204

7.9 Appendices 205

Appendix 7.A Conversion of Maxwell’s Equations into the Telegrapher’s Equations 205

Appendix 7.B Development of the Particular Solutions for T-line Waves 208

Appendix 7.C Alternate Development of Reflection Coefficient vs. Position 209

7.10 Homework 210

8 Antennas and Links 215

8.1 Introduction to Antennas 216

8.1.1 An Intuitive Transition from a Transmission Line to an Antenna 216

8.1.2 Antenna Concepts 217

8.2 Uniform Plane Waves 218

8.2.1 Comparison of Uniform Plane Wave and Transmission Line Solutions 219

8.2.2 The Poynting Vector and Electromagnetic Wave Power 220

8.2.3 Polarization 223

8.3 Antenna Parameters 224

8.3.1 Antenna Gain 224

8.3.2 Radiation Patterns 225

8.3.3 Radiation Resistance and VSWR 226

8.4 Links 228

8.4.1 Free-Space Loss 228

8.4.2 Friis Transmission Equation for Link Loss 229

8.5 Summary of Important Equations 231

8.6 Homework 231

9 Signal Integrity 233

9.1 Introduction to Signal Integrity 233

9.2 Transmission Line Effects 234

9.3 Crosstalk 235

9.3.1 Electric and Magnetic Field Coupling 235

9.3.2 Shielding 236

9.4 Electromagnetic Interference 237

9.4.1 Overview 237

9.4.2 EMI Measurements 238

9.5 Power/Ground Switching Noise 241

9.6 Summary of Important Equations 241

9.7 Homework 241

Appendix A Alphabetical Characters, Names, and Units 243

Appendix B Greek Letters, Names, and Units 247

Appendix c A Short List of Physical Constants 249

Appendix d A Short List of Common Material Electrical Properties 251

Appendix E Summary of Important Equations 253

Bibliography 259

Select Answers to Homework Problems 261

Index 267

저자소개

Robert Alan Strangeway (지은이)    정보 더보기
펼치기
Steven Sean Holland (지은이)    정보 더보기
펼치기
James Elwood Richie (지은이)    정보 더보기
펼치기
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