Title :
Fast finite-element solver for a reluctance mass accelerator
Author :
Slade, G. William
Abstract :
By choosing an appropriate method for partitioning and linearizing the system equations that describe a time-domain finite-element model of a reluctance mass accelerator, it is possible to reduce the computation time considerably over a traditional material reluctance model. In this work, we have constructed an axisymmetric magnetic field finite-element solver based on the induced magnetization of the saturable materials, instead of the more common field-dependent reluctance model. Eddy currents and driving circuit elements are also included in the model. Using this platform, we demonstrate how a well-conditioned set of field equations is produced and how a simple nonlinear iteration scheme can produce reliable results without repeated factorization of the finite-element matrix. Some comparisons with an established simplified model and experimental results help to verify the model
Keywords :
eddy currents; electromagnetic launchers; finite element analysis; magnetic fields; solenoids; axisymmetric magnetic field finite-element solver; coilguns; driving circuit elements; eddy currents; electromagnetic actuators; fast finite-element solver; finite-element analysis; induced magnetization; linear motors; reluctance mass accelerator; solenoids; Acceleration; Circuits; Eddy currents; Equations; Finite element methods; Linear accelerators; Magnetic fields; Magnetic materials; Magnetization; Time domain analysis; Coilguns; eddy currents; electromagnetic actuators; finite-element analysis; linear motors; magnetization; solenoids;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2006.880395