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Chapter 8. The Steady Magnetic Field. Stokes’ Theorem. Previously, from Ampere’s circuital law, we derive one of Maxwell’s equations, ∇× H = J . This equation is to be considered as the point form of Ampere’s circuital law and applies on a “per-unit-area” basis.
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Chapter 8 The Steady Magnetic Field Stokes’ Theorem • Previously, from Ampere’s circuital law, we derive one of Maxwell’s equations, ∇×H=J. • This equation is to be considered as the point form of Ampere’s circuital law and applies on a “per-unit-area” basis. • Now, we shall devote the material to a mathematical theorem known as Stokes’ theorem. • In the process, we shall show that we may obtain Ampere’s circuital law from ∇×H=J.
Chapter 8 The Steady Magnetic Field Stokes’ Theorem • Consider the surface S of the next figure, which is broken up into incremental surfaces of area ΔS. • If we apply the definition of the curl to one of these incremental surfaces, then: or or
Chapter 8 The Steady Magnetic Field Stokes’ Theorem • Let us now perform the circulation for every ΔS comprising S and sum the results. • As we evaluate the closed line integral for each ΔS, some cancellation will occur because every interior wall is covered once in each direction. • The only boundaries on which cancellation cannot occur form the outside boundary, the path enclosing S. • Therefore, where dL is taken only on the perimeter of S.
Chapter 8 The Steady Magnetic Field Stokes’ Theorem • Example • Consider the portion of a sphere as shown. The surface is specified by r = 4, 0 ≤ θ ≤ 0.1π, 0 ≤ φ ≤ 0.3π. The closed path forming its perimeter is composed of three circular arcs. Given the magnetic field H = 6rsinφar + 18r sinθcosφaφ A/m, evaluate each side of Stokes’ theorem.
Chapter 8 The Steady Magnetic Field Stokes’ Theorem
Chapter 8 The Steady Magnetic Field Magnetic Flux and Magnetic Flux Density • In free space, let us define magnetic flux density B as where Bis measured in webers per square meter (Wb/m2) or tesla (T). • The constant μ0 is not dimensionless and has a defined value for free space, in henrys per meter (H/m), of • The magnetic-flux-density vector B, as the name weber per square meter implies, is a member of the flux-density family of vector fields. • Comparing the laws of Biot-Savart and Coulomb, one can find analogy between H and E that leads to an analogy between B and D; D = ε0E and B = μ0H.
Chapter 8 The Steady Magnetic Field Magnetic Flux and Magnetic Flux Density • If B is measured in teslas or webers per square meter, then magnetic flux H should be measured in webers. • Let us represent magnetic flux by Φand define Φ as the flux passing through any designated area, • We remember that Gauss’s law states that the total electric flux passing through any closed surface is equal to the charge enclosed. This charge is the source of the electric flux D. • For magnetic flux, no current source can be enclosed, since the current is considered to be in closed circuit.
Chapter 8 The Steady Magnetic Field Magnetic Flux and Magnetic Flux Density • For this reason, the Gauss’s law for the magnetic field can be written as • Through the application of the divergence theorem, we can also find that • Fourth Maxwell’s Equation, static electric fields and steady magnetic fields.
Chapter 8 The Steady Magnetic Field Magnetic Flux and Magnetic Flux Density • Collecting all equations we have until now of static electric fields and steady magnetic fields, • The corresponding set of four integral equations that apply to static electric fields and steady magnetic fields is
Chapter 8 The Steady Magnetic Field Solved Example • Example • Find the flux between the conductors of the coaxial line we have discussed previously.
Chapter 8 The Steady Magnetic Field Exercise Problems A dielectric interface is described by 4y + 3z = 12 m. The side including the origin is free space where D1 = ax + 3ay + 2 azμC/m2. On the other side, εr2 = 3.6. Find D2 and θ2.(Scha.7.29 ep.117) Answer: 5.14 μC/m2, 45.6° A coaxial capacitor consists of two conducting coaxial surfaces of radii a and b ( a < b), and length l. The space between is filled with two different dielectric materials with relative dielectric constants εr1 and εr2. (a) Find the capacitance of this configuration; (b) Assuming l = 5 cm, b = 3a = 1.5 cm, and oil and mica are used, calculate the capacitance. (Ina2.4.33 S.386) Answer: (a) C = π(εr1+εr2)ε0l/ln(b/a); (b) 9.75 pF
Chapter 8 The Steady Magnetic Field Exercise Problems The regions, 0 < z < 0.1 m and 0.3 < z < 0.4 m, are conducting slabs carrying uniform current densities of 10 A/m2 in opposite directions, as shown in the next figure. Find Hx at z = –0.04, 0.06, 0.26, 0.36, and 0.46 m. (Hay.E5.S261.13) Answer: 0, –0.6 A/m, –1 A/m, –0.4 A/m, 0. A solid nonmagnetic conductor of circular cross section, ρ = 2 cm, carries a total current, I = 60 A, in the az direction. The conductor is inhomogeneous, having a conductivity that varies with ρ as σ = 105(1+2.5 × 105ρ2) S/m. Find the total flux crossing the radial plane defined by φ = 0, 0 < z < 1 m, and: (a) 0 < ρ < 1 cm; (b) 1 < ρ < 2 cm. (Hay.E5.S261.31) Answer: (a) 0.213 μWb; (b) 2.85 μWb.
Chapter 8 The Steady Magnetic Field End of the Lecture