Broadband Finite-Element Impedance Computation for Parasitic Extraction
Jonathan Stysch, Andreas Klaedtke, Herbert De Gersem

TL;DR
This paper introduces a finite element-based method for impedance extraction from CAD models, capable of handling complex material properties and arbitrary geometries, enhancing parasitic extraction in electromagnetic device design.
Contribution
It presents a novel, flexible finite element approach for impedance computation that accommodates inhomogeneous materials and multi-port models with minimal manual intervention.
Findings
Validated magnetoquasistatic approximation against analytical models
Demonstrated capability to handle inhomogeneous permittivities and permeabilities
Provides a stable low-frequency evaluation scheme
Abstract
Parasitic extraction is a powerful tool in the design process of electromechanical devices, specifically as part of workflows that check electromagnetic compatibility. A novel scheme to extract impedances from CAD device models, suitable for a finite element implementation, is derived from Maxwell's equations in differential form. It provides a foundation for parasitic extraction across a broad frequency range and is able to handle inhomogeneous permittivities and permeabilities, making it more flexible than existing integral equation approaches. The approach allows for the automatic treatment of multi-port models of arbitrary conductor geometry without requiring any significant manual user interaction. This is achieved by computing a connecting source current density that supplies current to the model's terminals, whatever their location in the model, subsequently using this current…
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