1992International Symposium on Electromagnetic CompatibilityRequires access

Modelling Electromagnetic Radiation From Digital Electronic Systems By Means Of The Finite Difference Time Domain Method

C.J. RaiIton, KM Richardson, J.P. McGeehan, K.F. Elder

Open publisher page 3 citations

Abstract

The necessity for the control and minimisation of unintentional electromagnetic emissions from electrical systems has long been appreciated and much skilled effort is spent on EMI suppression.Due to the complexity of the problem, however, very little in the wayof CAD tools is available to help the designer. In this contribution, a method is described, based on the Finite Difference Time Domain technique, whereby the radiation levels from digital circuits may bepredicted. The predicted results are compared to measurements from some trial configurations.

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What this paper is about

The necessity for the control and minimisation of unintentional electromagnetic emissions from electrical systems has long been appreciated and much skilled effort is spent on EMI suppression.Due to the complexity of the problem, however, very little in the wayof CAD tools is available to help the designer. In this contribution, a method is described, based on the Finite Difference Time Domain technique, whereby the radiation levels from digital circuits may bepredicted. The predicted results are compared to measurements from some trial configurations.

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OpenAlex reports 3 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

The necessity for the control and minimisation of unintentional electromagnetic emissions from electrical systems has long been appreciated and much skilled effort is spent on EMI suppression.Due to the complexity of the problem, however, very little in the wayof CAD tools is available to help the designer. In this contribution, a method is described, based on the Finite Difference Time Domain technique, whereby the radiation levels from digital circuits may bepredicted. The predicted results are compared to measurements from some trial configurations.

Key concepts: Finite-difference time-domain method, Computer science, Finite difference method, Computational electromagnetics, Radiation, Domain (mathematical analysis), Transmission-line matrix method, Electromagnetic compatibility

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