Author :
Croisant, William J. ; Feickert, Carl A. ; McInerney, Michael K.
Author_Institution :
US Army Constr. Eng. Res. Lab., Champaign, IL, USA
Abstract :
Electrically conductive, ferromagnetic shielding materials exhibit nonlinear behavior (including saturation) under intense pulsed electromagnetic field conditions such as those associated with lightning, electromagnetic pulse (EMP), and electrostatic discharge (ESD). Previously, an analytical procedure was developed to characterize the nonlinear electric field transients induced at the inner surface of long, thin-walled, cylindrical, electrically conductive, ferromagnetic shields by axially-directed short-duration surface current pulses on the outer surface. For a general relative differential permeability function μrd(H), it was shown that the peak value of the electric field transient can be expressed in terms of an effective permeability μE(β) and the time at which the peak occurs can be expressed in terms of effective permeability μτ(β), where the applied pulse parameter β≡Q0/σd2 is a fundamental combination of the nonmagnetic problem parameters (the charge per unit circumference, Q0, transported along the cylinder during the pulse; the electrical conductivity σ, of the material; and the wall thickness, d, of the cylinder). For a simple exponential relative differential permeability model μrd(H)=μriexp(-H/H1), the analytical procedure can be extended significantly. An applied pulse parameter ζ≡Q0/σd2Bs has been identified that includes the saturation magnetization Bs , which is a magnetic problem parameter. Furthermore, the effective permeabilities μE(ζ) can be expressed as μζ=μriΩE(ζ), where ΩE(ζ) is a fundamental quantity that depends only on ζ. Similarly, μτ(ζ) can be expressed as μτ(ζ)=μriΩτ (ζ), where ΩE(ζ) is a fundamental quantity that depends only on ζ. Results of numerical calculations for ΩE(ζ) and Ωτ(ζ) are presented
Keywords :
conductors (electric); electromagnetic pulse; electrostatic discharge; ferromagnetic materials; lightning; magnetic permeability; magnetic shielding; transient analysis; EMP; ESD; cylinder; effective permeability; electrical conductivity; electrically conductive materials; electromagnetic pulse; electromagnetic transients; electrostatic discharge; exponential permeability model; ferromagnetic shielding materials; ferromagnetic shields; lightning; nonlinear analytical procedure; nonlinear electric field transients; nonmagnetic problem parameters; pulse parameter; pulsed electromagnetic field; relative differential permeability function; saturation; short-duration surface current pulses; wall thickness; Conducting materials; EMP radiation effects; Electromagnetic analysis; Electromagnetic fields; Electromagnetic transients; Electrostatic discharge; Lightning; Permeability; Saturation magnetization; Surface discharges;