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* We have The magnetic flux density due to a current element Idl’ is This is known as Biot-Savart law. Ampere’s circuital law: * EXAMPLE 6-4 P236 (a) * (b) * summary 1. Introduction 2. Fundamental Postulates of Magnetostatics in free space Lorentz’s force equation Differential form Integral form Postulates of Magnetostatics in Free Space * 3. Vector Magnetic Potential 4. The Biot-Savart Law and Applications * homework Thank you! Bye-bye! 答疑安排 时间: 地点:1401, 1403 P.6-3 Field and Wave Electromagnetic 电磁场与电磁波 2015. 11. 1 * * * Static Electric Fields 1. Fundamental Postulates of Electrostatics in Free Space 2. Coulomb’s Law 3. Gauss’s Law and Applications 5. Electric Potential 6. Conductors in Static Electric Field 7. Dielectrics in Static Electric Field 8. Electric Flux Density and Dielectric Constant 9. Boundary Conditions for Electrostatic Fields 10. Capacitance and Capacitors 11. Electrostatic Energy * 1. Divergence Theorem 2. Stokes’s Theorem 3. Two Null Identities if then if then Review Vector Analysis * Review Static Electric Fields 1. Fundamental Postulates of Electrostatics in Free Space Differential form Integral form Postulates of electrostatics in free space * 2. Coulomb’s Law * 3. Gauss’s Law and Applications Gauss’s law is particularly useful in determining the E-field of charge distributions with some symmetry conditions, such that the normal component of the electric field intensity is constant over an enclosed surface. The essence of applying Gauss’s law lies first in the recognition of symmetry conditions and second in the suitable choice of a surface over which the normal component of E resulting from a given charge distribution is a constant. Such a surface is referred to as a Gaussian surface. * 4. Electric Potential * 5. Conductors in Static Electric Field 6. Dielectrics in Static Electric Field Inside a conductor (under static conditions) Boundary Conditions (at a Conductor/Free Space Interface) * 7. Electric Flux Density
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