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            Dynamic iteration and model order reduction for magneto-quasistatic systems

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            Author(s)
            Kerler-Back, Johanna
            Collection
            Knowledge Unlatched (KU)
            Language
            English
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            Abstract
            Our world today is becoming increasingly complex, and technical devices are getting ever smaller and more powerful. The high density of electronic components together with high clock frequencies leads to unwanted side-effects like crosstalk, delayed signals and substrate noise, which are no longer negligible in chip design and can only insufficiently be represented by simple lumped circuit models. As a result, different physical phenomena have to be taken into consideration since they have an increasing influence on the signal propagation in integrated circuits. Computer-based simulation methods play thereby a key role. The modelling and analysis of complex multi-physics problems typically leads to coupled systems of partial differential equations and differential-algebraic equations (DAEs). Dynamic iteration and model order reduction are two numerical tools for efficient and fast simulation of coupled systems. Formodelling of low frequency electromagnetic field, we use magneto-quasistatic (MQS) systems which can be considered as an approximation to Maxwells equations. A spatial discretization by using the finite element method leads to a DAE system. We analyze the structural and physical properties of this system and develop passivity-preserving model reduction methods. A special block structure of the MQS model is exploited to to improve the performance of the model reduction algorithms.
            URI
            https://doab-dev.siscern.org/handle/20.500.12854/176630
            Keywords
            Technology & Engineering; Electronics; Mathematics; Science; Physics
            DOI
            https://doi.org/10.30819/4910
            ISBN
            9783832549107
            Publisher
            Logos Verlag Berlin
            Publication date and place
            2019
            Grantor
            • Knowledge Unlatched
            Imprint
            Logos Verlag Berlin
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            • logo EUEuropean Union
              This project received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 871069.

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