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Research Article Open access CC BY 4.0

Conservation Properties of the Trapezoidal Rule for Linear Transient Electromagnetics

Arup Nandy, C. S. Jog

Journal of Advances in Mathematics and Computer Science · pp. 1–26 · Published 26 Feb 2018

10.9734/JAMCS/2018/39632

Abstract

The Time Domain Finite Element Method (TDFEM) has been used extensively to solve transient electromagnetic radiation and scattering problems. But in most implementations so far, vector basis functions have been used to discretize the field variables. In multiphysics simulations that involve coupling the electromagnetic equations with structural or fluid flow equations, nodal finite elements can provide a unified data structure for a monolithic coupled formulation. With such multiphysics simulations in view, in this work we develop a time-stepping strategy to model electromagnetic radiation and scattering within the nodal finite element framework. Although conservation of energy is well-known, we show in this work that there are additional quantities that are also conserved in the absence of loading. We then show that the developed time-stepping strategy (which is closely related to the trapezoidal rule that is widely used for solving linear hyperbolic problems) mimics these continuum conservation properties either exactly or to a very good approximation. Thus, the developed numerical strategy can be said to be ‘unconditionally stable’ (from an energy perspective) allowing the use of arbitrarily large time-steps. The developed method uses standard elements with Lagrange interpolation functions and standard Gaussian quadrature. We demonstrate the high accuracy and robustness of the developed method for solving both interior and exterior domain radiation problems, and for finding the scattered field from conducting and dielectric bodies.

Electromagnetic radiation and scattering Time domain Trapezoidal rule Nodal finite elements.

Cited by 6

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A novel implementation of symmetric boundary condition in harmonic and transient analysis of electromagnetic wave propagation

Durgarao Kamireddy, Sreekanth Karanam, Arup Nandy · International Journal for Computational Methods in Engineering Science and Mechanics · 2025

Electromagnetic eigen analysis: Performance comparison of four node and four edge quadrilateral elements with the effect of distortion

Durgarao Kamireddy, Saurabh Madhukar Chavan, Arup Nandy · Materials Today: Proceedings · 2022

Exact conservation in transient electromagnetics using edge elements

Durgarao Kamireddy, Arup Nandy · International Journal for Computational Methods in Engineering Science and Mechanics · 2024

Comparative performance of novel nodal-to-edge finite elements over conventional nodal element for electromagnetic analysis

Durgarao Kamireddy, Saurabh Madhukar Chavan, Arup Nandy · Journal of Electromagnetic Waves and Applications · 2022

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