王薪,清华大学电子工程系学士、硕士,美国普渡大学(Purdue University)电气与计算机工程博士,2002年至2004年,在美国伊利诺伊大学厄巴纳-尚佩恩分校(University of Illinois at Urbana-Champaign, UIUC)的计算电磁学中心担任研究助理工作,2009年至2010年在美国普渡大学Birck纳米研究中心担任博士后副研究员,目前担任南京航空航天大学电子信息工程学院副教授,主要从事电磁场与微波技术、超宽带脉冲无线电、计算电磁方法、微波遥感等方面的研究和教学工作。
【目录】
Chapter 1Vector Analysis(矢量分析)
1.1Introduction(引言)
1.2Vector Representation(矢量的表示方式)
1.3Addition and Subtraction(矢量的加减法)
1.4Products of Vectors(矢量乘积)
1.4.1Multiplication by scalars(数乘)
1.4.2Dot Product/Scalar Product(点积/标量积)
1.4.3Cross Product/Vector Product(叉积/矢量积)
1.4.4Scalar and vector triple products(标量/矢量三重积)
1.5Orthogonal Coordinate Systems(正交坐标系)
1.5.1Cartesian Coordinates(笛卡儿坐标)
1.5.2Cylindrical Coordinates(圆柱坐标)
1.5.3Spherical Coordinates(圆球坐标)
1.6Integrals of Vector Fields(矢量场的积分)
1.7Gradient of a Scalar Field(标量场的梯度)
1.8Divergence of a Vector Field(矢量场的散度)
1.9Divergence Theorem(散度定理)
1.10Curl of a Vector Field(矢量场的旋度)
1.11Stokes’s Theorem(斯托克斯定理)
1.12Laplacian Operator(拉普拉斯算子)
1.13Curlfree and Divergencefree Fields(无旋场与无散场)
1.14Helmholtz’s Theorem(亥姆霍兹定理)
Summary
Review Questions
Problems
Chapter 2Static Electric Fields(静电场)
2.1Introduction(引言)
2.2Electric Fields and Charges(电场与电荷)
2.2.1Electric Fields Due to Discrete Charges(离散电荷产生的电场)
2.2.2Electric Fields Due to Continuous Charge Distributions
(连续分布电荷产生的电场)
2.3Divergence of Electrostatic Fields and Gauss’s Law(静电场的散度与高斯定律)
2.4Curl of Electrostatic Fields and Electric Potential(静电场的旋度与电位)
2.4.1Electric Potential Due to Discrete Charges(离散电荷产生的电位)
2.4.2Electric Potential Due to a Continuous Charge Distribution
(连续分布电荷产生的电位)
2.5Conductors in Static Electric Field(静电场中的导体)
2.6Dielectrics in Static Electric Fields(静电场中的介质)
2.7Electric Flux Density and Gauss’s Law(电通密度与高斯定律)
2.8Boundary Conditions for Electrostatic Fields(静电场的边界条件)
2.9Capacitance and Capacitors(电容)
2.10Electrostatic Energy(静电能)
2.10.1Electrostatic Energy in Terms of Charge and Potential
(电荷与电位表示的静电能)
2.10.2Electrostatic Energy in Terms of Electric Field Quantities
(电场表示的静电能)
Summary
Review Questions
Problems
Chapter 3Solution of Electrostatic Boundary Value Problems
(静电场边界值问题求解)
3.1Introduction(引言)
3.2Poisson’s and Laplace’s Equations(泊松方程、拉普拉斯方程)
3.3Uniqueness of Electrostatic Solutions(静电场解的唯一性)
3.4Method of Images(镜像法)
3.4.1Image with Respect to Planes(平面镜像)
3.4.2Image with Respect to Spheres(球面镜像)
3.4.3Image in Cylinders(圆柱面镜像)
3.5Method of Separation of Variables(分离变量法)
Summary
Review Questions
Problems
Chapter 4Steady Electric Currents(恒定电流)
4.1Introduction(引言)
4.2Current Density, Ohm’s Law and Joule’s Law(电流密度、欧姆定律与焦耳定律)
4.3Divergence of Current Density and Conservation of Charge
(电流密度的散度与电荷守恒定律)
4.4Curl of Steady Electric Field and Electromotive Force(恒定电场的旋度与电动势)
4.5Boundary Conditions for Current Density(电流密度的边界条件)
4.6Resistance Calculations(电阻计算)
Summary
Review Questions
Problems
Chapter 5Static Magnetic Fields(恒定磁场)
5.1Introduction(引言)
5.2Magnetic Flux Density and BiotSavart Law(磁通密度与比奥萨法定律)
5.3Divergence of Magnetic Flux Density and Vector Magnetic Potential
(磁通密度的散度与矢量磁位)
5.4Curl of Magnetic Flux Density and Ampere’s Circuital Law
(磁通密度的旋度与安培环路定律)
5.5Magnetization and Equivalent Current Densities(磁化与等效电流密度)
5.6Magnetic Field Intensity and Relative Permeability(磁场强度与相对磁导率)
5.7Boundary Conditions for Magnetostatic Fields(恒定磁场的边界条件)
5.8Magnetic Circuits(磁路)
5.9Inductances and Inductors(电感)
5.9.1Selfinductances of thin wires(细线自感)
5.9.2Internal and external inductances(内电感与外电感)
5.9.3Mutual inductances and the Neumann Formula(互感与纽曼公式)
5.10Magnetic Energy(磁能)
5.10.1Magnetic Energy in Terms of Currents and Magnetic Fluxes
(电流和磁通表示的磁能)
5.10.2Magnetic Energy in Terms of Field Quantities(场量表示的磁能)
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