Variational, stable, and self-consistent coupling of 3D electromagnetics to 1D transmission lines in the time domain

•Multiscale method with applications to power-flow on pulsed power devices.•Circuit coupling imposed as constraints and relaxed with Lagrange multipliers.•Model and discretization have provable energy estimates.•Describes and demonstrates portably performant implementation.•Presents code verificatio...

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Veröffentlicht in:Journal of computational physics 2022-02, Vol.451, p.110856, Article 110856
Hauptverfasser: McGregor, Duncan, Phillips, Edward, Sirajuddin, David, Pointon, Timothy
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container_title Journal of computational physics
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creator McGregor, Duncan
Phillips, Edward
Sirajuddin, David
Pointon, Timothy
description •Multiscale method with applications to power-flow on pulsed power devices.•Circuit coupling imposed as constraints and relaxed with Lagrange multipliers.•Model and discretization have provable energy estimates.•Describes and demonstrates portably performant implementation.•Presents code verification with a transient and steady state problem. This work presents a new multiscale method for coupling the 3D Maxwell's equations to the 1D telegrapher's equations. While Maxwell's equations are appropriate for modeling complex electromagnetics in arbitrary-geometry domains, simulation cost for many applications (e.g. pulsed power) can be dramatically reduced by representing less complex transmission line regions of the domain with a 1D model. By assuming a transverse electromagnetic (TEM) ansatz for the solution in a transmission line region, we reduce the Maxwell's equations to the telegrapher's equations. We propose a self-consistent finite element formulation of the fully coupled system that uses boundary integrals to couple between the 3D and 1D domains and supports arbitrary unstructured 3D meshes. Additionally, by using a Lagrange multiplier to enforce continuity at the coupling interface, we allow for an absorbing boundary condition to also be applied to non-TEM modes on this boundary. We demonstrate that this feature reduces non-physical reflection and ringing of non-TEM modes off of the coupling boundary. By employing implicit time integration, we ensure a stable coupling, and we introduce an efficient method for solving the resulting linear systems. We demonstrate the accuracy of the new method on two verification problems, a transient O-wave in a rectilinear prism and a steady-state problem in a coaxial geometry, and show the efficiency and weak scalability of our implementation on a cold test of the Z-machine MITL and post-hole convolute.
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source ScienceDirect Journals (5 years ago - present)
subjects Boundary conditions
Circuit coupling
Code verification
Computational physics
Coupling
Finite element methods
Lagrange multiplier
Lagrange multipliers
Linear systems
Mathematical models
Maxwell's equations
Multiscale analysis
One dimensional models
Time integration
Transmission line coupling
Transmission lines
title Variational, stable, and self-consistent coupling of 3D electromagnetics to 1D transmission lines in the time domain
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