Electromagnetic Field Theory: A Problem Solving Approach Part 30 pot

Electromagnetic Field Theory: A Problem Solving Approach Part 30 pot

Electromagnetic Field Theory: A Problem Solving Approach Part 30 pot

... charge density on the upper electrode is then ev or(f a) = -eE4.(0 = a) =- ra with total charge per unit length E ev b A( ,b=ea)= ofrT( 4a= a)dr=-Eln Ja a a so that the capacitance ... r 0 a b Figure 4-7 Two conducting planes at angle a stressed by a voltage v have a 4-directed electric field. · 270 Electric Field Boundary Value Problems...

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Electromagnetic Field Theory: A Problem Solving Approach Part 3 pot

Electromagnetic Field Theory: A Problem Solving Approach Part 3 pot

... so that in later chapters most of our attention can be devoted to the applications of the mathematics rather than to its development. Additional mathematical material will ... ARRAYS 681 9.3.1 A Simple Two Element Array 681 (a) Broadside Array 683 (b) End-fire Array 685 (c) Arbitrary Current Phase 685 9.3.2 An N Dipole Array 685 9.4 LONG DIPOLE ANTEN...

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Electromagnetic Field Theory: A Problem Solving Approach Part 4 potx

Electromagnetic Field Theory: A Problem Solving Approach Part 4 potx

... Vector Algebra 9 scalar. If the scalar is negative, the direction of the vector is reversed: aA = aAi. + aA,i, + aA i, 1-2-3 Addition and Subtraction The sum of ... the area of the parallelogram formed with A and B as adjacent sides. Interchanging the order of A and B reverses the sign of the cross product: AxB= -BxA AxB BxA=-AxB Figure ......

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Electromagnetic Field Theory: A Problem Solving Approach Part 11 potx

Electromagnetic Field Theory: A Problem Solving Approach Part 11 potx

... the radial and 0 directions, but sym- metrically located charge elements at -0 have equal field magnitude components that add radially but cancel in the 0 direction. Realizing ... surface charge show that the electric field is purely radial. (b) Gauss's law applied to concentric cylindrical -surfaces shows that the field inside the surface...

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Electromagnetic Field Theory: A Problem Solving Approach Part 13 pot

Electromagnetic Field Theory: A Problem Solving Approach Part 13 pot

... their centers a distance D apart as in Figure 2-26. We place a line charge A a distance b, from the center of cylinder 1 and a line charge -A a distance b 2 from the ... 0 plane. If a conductor were placed along the x = 0 plane with a single line charge A at x = -a, the potential and electric field for x < 0 is the...

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Electromagnetic Field Theory: A Problem Solving Approach Part 19 potx

Electromagnetic Field Theory: A Problem Solving Approach Part 19 potx

... potential must approach that of an isolated point charge. Note that for small r the potential becomes very large and the small poten- tial approximation is violated. (c) ... generalize the results of Section 2.4.6 to include dielec- tric media by again choosing a small Gaussian surface whose upper and lower surfaces of area dS are parallel .....

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Electromagnetic Field Theory: A Problem Solving Approach Part 22 pot

Electromagnetic Field Theory: A Problem Solving Approach Part 22 pot

... Vo (33) (iwsE 2 + 2 ) (iaEl +1) [b(al +jcee) +a( o'2+jWae 2 )] which gives the interfacial surface charge amplitude as °' = e 2 • 2 I1I = (34) [b (a 1 +jOai1) +a( a-2 +jW6 2 )] As the frequency ... that the dielectric can be modeled as a parallel resistor-capacitor combination, edAz 1 s Cz =z s GAz odAz C is the capacitance per unit length and...

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Electromagnetic Field Theory: A Problem Solving Approach Part 34 potx

Electromagnetic Field Theory: A Problem Solving Approach Part 34 potx

... Problems 305 These relations are known as the Cauchy-Riemann equations and u and v are called conjugate functions. (c) Show that both u and v obey Laplace's equation. (d) ... surface charge at (c) What is the resistance and capacitance? 10. The potential on an infinitely long cylinder is constrained to be V(r = a) = Vo sin n6 -Vo/2 Vo/2...

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Electromagnetic Field Theory: A Problem Solving Approach Part 39 pot

Electromagnetic Field Theory: A Problem Solving Approach Part 39 pot

... variable in (44), (48) integrates to M=- mN -auedu 2a sinh aa -mN N Se"(u - 1) •, 2a sinh a -mN [e-"( -a - 1)- e" (a - 1)] 2a sinh a -mN - [ -a cosh a+ sinh a] a sinh ... the magnetization saturates at M = mN as all the dipoles have their moments aligned with the field. At room temperature, a is typically very small. Usin...

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Electromagnetic Field Theory: A Problem Solving Approach Part 41 pot

Electromagnetic Field Theory: A Problem Solving Approach Part 41 pot

... magnetic polarizability a (m= a H) are a distance a apart along the z axis. A macroscopic field Hoi, is applied. (a) What is the local magnetic field acting on each ... constant k so that in the absence of a magnetic field its natural frequency was wo = r, (a) A magnetic field Boi, is applied. Write Newton's law for the...

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