Title :
Electromagnetic macromodels and Maxwellian circuits
Author :
Cangellaris, Andreas C.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Illinois, Urbana, IL, USA
Abstract :
Discrete approximations and numerical solution of Maxwell´s curl equations provide a foundation for the development of a variety of macro-models of electromagnetic passive devices, components, and sub-systems. In their majority, such macro-modeling is aimed at containing the cost of numerical computation by offering compact, computationally efficient models as alternatives to the computationally more expensive, detailed models of structures of multi-scale complexity. Preserving key physical attributes of the electromagnetic structure, as Maxwellian circuits attempt to do, is a highly desirable property of the macromodel, albeit not always possible. The aggressive pursuit of on-chip RF and mixed-signal functionality integration prompts us to consider electromagnetic macro-modeling from a different angle. More specifically, this paper entertains the possibility of using electromagnetic macro-models for the seamless insertion of spatially-accurate (distributed) models of integrated passives and their interactions in the nonlinear, high-frequency circuit simulators used for computer-aided analysis and design of on-chip RF and mixed-signal functional blocks.
Keywords :
Maxwell equations; computer aided analysis; electromagnetic devices; microwave circuits; Maxwell curl equations; Maxwellian circuits; computer-aided analysis; discrete approximations; electromagnetic macromodels; electromagnetic passive devices; electromagnetic structure; high-frequency circuit simulators; mixed-signal functional blocks; mixed-signal functionality integration; numerical computation; numerical solution; on-chip RF; spatially-accurate models; Capacitors; Electromagnetics; Equations; Finite element methods; Integrated circuit modeling; Lattices; Mathematical model;
Conference_Titel :
Antenna Technology (iWAT), 2011 International Workshop on
Conference_Location :
Hong Kong
Print_ISBN :
978-1-4244-9133-9
DOI :
10.1109/IWAT.2011.5752303