登 录
註 冊
论坛
微波仿真网
注册
登录论坛可查看更多信息
微波仿真论坛
>
微波电子书免费下载
>
Microwave.Engineering,.David.M..Pozar,4ed,.Wiley,2012【微 ..
发帖
回复
1
2
3
13465
阅读
20
回复
[其它]
Microwave.Engineering,.David.M..Pozar,4ed,.Wiley,2012【微波工程4ed|微波仿真论坛推荐】
离线
wangshuxin
UID :2244
注册:
2007-04-27
登录:
2025-08-10
发帖:
1379
等级:
八级仿真大师
0楼
发表于: 2012-04-04 09:48:03
Microwave Engineering
v`x~O+
Mk,8v],-Tj
Fourth Edition
Yg2z=&p-{"
David M. Pozar
K2:r7f
University of Massachusetts at Amherst
b^hCm`2w*
]p+t>'s
vaR0`F
1 ELECTROMAGNETIC THEORY 1
^b>E_u
1.1 Introduction to Microwave Engineering 1
?R"5 .3
Applications of Microwave Engineering 2
90I)"vfW5
A Short History of Microwave Engineering 4
$`_(%tl
1.2 Maxwell’s Equations 6
bis/Nfr]
1.3 Fields in Media and Boundary Conditions 10
YVu8/D@ o
Fields at a General Material Interface 12 Fields at a Dielectric Interface 14
69yTGUG3
Fields at the Interface with a Perfect Conductor (Electric Wall) 14
|(XV '-~
The MagneticWall Boundary Condition 15 The Radiation Condition 15
Ob0=ZW`+&
1.4 The Wave Equation and Basic Plane Wave Solutions 15
|W*f6F3
The Helmholtz Equation 15 Plane Waves in a Lossless Medium 16
Y k~ i.p
Plane Waves in a General Lossy Medium 17
z-$?.?d
Plane Waves in a Good Conductor 19
?_n.B=H`8
1.5 General Plane Wave Solutions 20
JJ qX2B
Circularly Polarized Plane Waves 24
$V`O%Sz
1.6 Energy and Power 25
t$Irr*
Power Absorbed by a Good Conductor 27
e/@udau
1.7 Plane Wave Reflection from a Media Interface 28
>`,v?<>+
General Medium 28 Lossless Medium 30
Mt@K01MI%
Good Conductor 31 Perfect Conductor 32
s.GTY@t
The Surface Impedance Concept 33
n (cSfT
1.8 Oblique Incidence at a Dielectric Interface 35
0#Rj[J;kh
Parallel Polarization 36 Perpendicular Polarization 37
|nU:
Total Reflection and Surface Waves 38
tGM)"u-
1.9 Some Useful Theorems 40
Of([z!'Gc
The Reciprocity Theorem 40 Image Theory 42
3%|<U51
ix
4_r8ynq{z
x Contents
@$+l ^"#-]
2 TRANSMISSION LINE THEORY 48
1`2lTkg
2.1 The Lumped-Element Circuit Model for a Transmission Line 48
ua7I K~8l
Wave Propagation on a Transmission Line 50 The Lossless Line 51
=bv8W <#
2.2 Field Analysis of Transmission Lines 51
;CAB.aB~
Transmission Line Parameters 51
K7e<hdP_#
The Telegrapher Equations Derived from Field Analysis of a Coaxial Line 54
%qja:'k
Propagation Constant, Impedance, and Power Flow for the Lossless
Z][?'^`^!
Coaxial Line 56
5\QNGRu"
2.3 The Terminated Lossless Transmission Line 56
z{!wQ~ j
Special Cases of Lossless Terminated Lines 59
/ HaS.
2.4 The Smith Chart 63
:p8JO:g9
The Combined Impedance–Admittance Smith Chart 67
hh: )"<[
The Slotted Line 68
WxO*{`T!
2.5 The Quarter-Wave Transformer 72
Z.<1,EKi=
The Impedance Viewpoint 72 The Multiple-Reflection Viewpoint 74
m\@Q/_v
2.6 Generator and Load Mismatches 76
6LvUi|~"<
Load Matched to Line 77 Generator Matched to Loaded Line 77
3]}W
Conjugate Matching 77
K<+AJ(C
2.7 Lossy Transmission Lines 78
X8;03EW;
The Low-Loss Line 79 The Distortionless Line 80
3t%uUkXl
The Terminated Lossy Line 81
~xvQ?c?-
The Perturbation Method for Calculating Attenuation 82
5l(;+#3y/
The Wheeler Incremental Inductance Rule 83
}$AC0
2.8 Transients on Transmission Lines 85
1egryp
Reflection of Pulses from a Terminated Transmission Line 86
-P'>~W,~
Bounce Diagrams for Transient Propagation 87
gfr``z=>O
3 TRANSMISSION LINES AND WAVEGUIDES 95
ch :428
3.1 General Solutions for TEM, TE, and TM Waves 96
HJg)c;u/2;
TEM Waves 98 TE Waves 100
O5k's
TM Waves 100 Attenuation Due to Dielectric Loss 101
@}fnR(fS
3.2 Parallel PlateWaveguide 102
C: e}}8i
TEM Modes 103 TM Modes 104 TE Modes 107
\V: _Zs
3.3 Rectangular Waveguide 110
*+@/:$|U
TE Modes 110 TM Modes 115
4eIu@ ";!
TEm0 Modes of a Partially Loaded Waveguide 119
D4o?
3.4 Circular Waveguide 121
#NL1N_B
TE Modes 122 TM Modes 125
c1:op@t
3.5 Coaxial Line 130
#axRg=d?K
TEM Modes 130 Higher Order Modes 131
Pu axS
Contents xi
:B=`^>RK
3.6 Surface Waves on a Grounded Dielectric Sheet 135
6[qRb+ds
TM Modes 135 TE Modes 137
_f34p:B%s
3.7 Stripline 141
A]=?fyPh{'
Formulas for Propagation Constant, Characteristic Impedance,
vBM\W%T|d
and Attenuation 141 An Approximate Electrostatic Solution 144
e,1Jxz4QH
3.8 Microstrip Line 147
t.knYO)
Formulas for Effective Dielectric Constant, Characteristic Impedance,
= b)q.2'#
and Attenuation 148
?hDEFW9&^x
Frequency-Dependent Effects and Higher Order Modes 150
={feN L
3.9 The Transverse Resonance Technique 153
1N#TL"lMS
TE0n Modes of a Partially Loaded Rectangular Waveguide 153
qRB%G<H
3.10 Wave Velocities and Dispersion 154
GD< Afni
Group Velocity 155
(G$m}ng
3.11 Summary of Transmission Lines and Waveguides 157
%Yd}},X_E
Other Types of Lines and Guides 158
p1Lx\
4 MICROWAVE NETWORK ANALYSIS 165
oM MU5sm
4.1 Impedance and Equivalent Voltages and Currents 166
^OA}#k NTW
Equivalent Voltages and Currents 166 The Concept of Impedance 170
Po^2+s(fY
Even and Odd Properties of Z(ω) and (ω) 173
1bj75/i<6
4.2 Impedance and Admittance Matrices 174
W%1fm/G0
Reciprocal Networks 175 Lossless Networks 177
d,D)>Y'h
4.3 The Scattering Matrix 178
Wg}#{[4
Reciprocal Networks and Lossless Networks 181
8E0Rg/DnT
A Shift in Reference Planes 184
5~.\rcr%
Power Waves and Generalized Scattering Parameters 185
?58pkg J
4.4 The Transmission (ABCD) Matrix 188
$X\BO&
Relation to Impedance Matrix 191
v3]q2*`G#
Equivalent Circuits for Two-Port Networks 191
qw_qGgbl
4.5 Signal Flow Graphs 194
]L_HnmD6
Decomposition of Signal Flow Graphs 195
SXod r}
Application to Thru-Reflect-Line Network Analyzer Calibration 197
RbrvY
4.6 Discontinuities and Modal Analysis 203
A#jiCIc
Modal Analysis of an H-Plane Step in Rectangular Waveguide 203
.s2d
4.7 Excitation of Waveguides—Electric and Magnetic Currents 210
;W+.]_$6)T
Current Sheets That Excite Only One Waveguide Mode 210
t-E'foYfr`
Mode Excitation from an Arbitrary Electric or Magnetic Current Source 212
YHKm{A ]
4.8 Excitation of Waveguides—Aperture Coupling 215
*><] [|Y@H
Coupling Through an Aperture in a Transverse Waveguide Wall 218
~:+g+Mf~[
Coupling Through an Aperture in the Broad Wall of a Waveguide 220
yY&(?6\{<<
xii Contents
vDBnWA
5 IMPEDANCE MATCHING AND TUNING 228
5h20\b?=$
5.1 Matching with Lumped Elements (L Networks) 229
0tsll1
Analytic Solutions 230 Smith Chart Solutions 231
h+*
5.2 Single-Stub Tuning 234
IndNR:"g
Shunt Stubs 235 Series Stubs 238
T-5T`awf
5.3 Double-Stub Tuning 241
9Z+@i:_}
Smith Chart Solution 242 Analytic Solution 245
9)4N2=
5.4 The Quarter-Wave Transformer 246
'0o`<xW
5.5 The Theory of Small Reflections 250
`I'=d4
Single-Section Transformer 250 Multisection Transformer 251
5<#H=A~(
5.6 Binomial Multisection Matching Transformers 252
N!Y'W)i16
5.7 Chebyshev Multisection Matching Transformers 256
{s`1+6_&Vz
Chebyshev Polynomials 257 Design of Chebyshev Transformers 258
:fj}J)9'xW
5.8 Tapered Lines 261
w=^*)jZ8
Exponential Taper 262 Triangular Taper 263
]j{S' cz
Klopfenstein Taper 264
Zn9w1ev
5.9 The Bode–Fano Criterion 266
{b#c0>.8-
6 MICROWAVE RESONATORS 272
JL(*peeu3
6.1 Series and Parallel Resonant Circuits 272
9r8{9h:
Series Resonant Circuit 272 Parallel Resonant Circuit 275
;UWdT]>!?
Loaded and Unloaded Q 277
Bj]0Cz
6.2 Transmission Line Resonators 278
h_A}i2/{
Short-Circuited λ/2 Line 278 Short-Circuited λ/4 Line 281
ueWG/`ig
Open-Circuited λ/2 Line 282
G&Cl:CtC
6.3 Rectangular Waveguide Cavity Resonators 284
{{<o1{_H
Resonant Frequencies 284 Unloaded Q of the TE10 Mode 286
a.] !
6.4 Circular Waveguide Cavity Resonators 288
C ch1"j<k$
Resonant Frequencies 289 Unloaded Q of the TEnm Mode 291
(bT\HW%m
6.5 Dielectric Resonators 293
xH'H! 8
Resonant Frequencies of TE01δ Mode 294
<o]tW4\(R
6.6 Excitation of Resonators 297
`*N0 Lbl]
The Coupling Coefficient and Critical Coupling 298
WVo%'DtF`
A Gap-Coupled Microstrip Resonator 299
|Ec $%
An Aperture-Coupled Cavity 302
x b _C1n
Determining Unloaded Q from Two-Port Measurements 305
[C d2L&9
6.7 Cavity Perturbations 306
U9N}6a=
Material Perturbations 306 Shape Perturbations 309
%@rh\Z
Contents xiii
WQK#&r*
7 POWER DIVIDERS AND DIRECTIONAL COUPLERS 317
FlkAo]
7.1 Basic Properties of Dividers and Couplers 317
PD/~@OsxU
Three-Port Networks (T-Junctions) 318
RcHyePuF)R
Four-Port Networks (Directional Couplers) 320
ucA6s:!={
7.2 The T-Junction Power Divider 324
?Rl*5GRW
Lossless Divider 324 Resistive Divider 326
+T4<