A time domain boundary element formulation employing the surface impedance boundary conditions (SIBCs) is developed for three-dimensional transient eddy current problem of cylindrical conductors. SIBCs of different orders of approximation are implemented using the perturbation technique in the small parameter proportional to the ratio of the skin depth and characteristic size of the conductor cross section. The formulation consists of a set of the time domain surface integral equations that have similar left-hand sides and can be solved using the same program procedure. The number of the equations is determined by the order of approximation of the SIBC, namely: solutions in the perfect electrical conductor (PEC) limit (lowest order) and in so-called Rytov approximation (highest order) are given by one and four equations, respectively. It is demonstrated that each equation admits separation of variables into space and time components that significantly reduces computational expenses as compared with traditional time domain formulations requiring the integral equations being solved at each time step. For the purpose of validation, a test problem is simulated by the proposed formulation and “original” BEM based on the time-dependent fundamental solution. Conditions of applicability are discussed and the effect of such factors as shape of the incident current pulse and proximity effect is considered.

Time Domain Surface Impedance Concept for Low Frequency Electromagnetic Problems-Part II: Application to Transient Skin and Proximity Effect Problems in Cylindrical Conductors

DI RIENZO, LUCA;
2005-01-01

Abstract

A time domain boundary element formulation employing the surface impedance boundary conditions (SIBCs) is developed for three-dimensional transient eddy current problem of cylindrical conductors. SIBCs of different orders of approximation are implemented using the perturbation technique in the small parameter proportional to the ratio of the skin depth and characteristic size of the conductor cross section. The formulation consists of a set of the time domain surface integral equations that have similar left-hand sides and can be solved using the same program procedure. The number of the equations is determined by the order of approximation of the SIBC, namely: solutions in the perfect electrical conductor (PEC) limit (lowest order) and in so-called Rytov approximation (highest order) are given by one and four equations, respectively. It is demonstrated that each equation admits separation of variables into space and time components that significantly reduces computational expenses as compared with traditional time domain formulations requiring the integral equations being solved at each time step. For the purpose of validation, a test problem is simulated by the proposed formulation and “original” BEM based on the time-dependent fundamental solution. Conditions of applicability are discussed and the effect of such factors as shape of the incident current pulse and proximity effect is considered.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11311/554496
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