Affiliation:
1. Faculty of Electrical and Computer Engineering, Cracow University of Technology, 24 Warszawska Street, 31-155 Cracow, Poland
Abstract
Field-circuit models are very often used to model electromagnetic devices with conductive and non-linear magnetic materials. The numerical calculations of the field in the magnetic material must be combined with an equation of an external coil placed in the magnetic circuit. This means that the partial differential equations of the electromagnetic field in non-linear conductive materials and the non-linear ordinary differential equations must be solved together. Effective algorithms for solving such problems are still being developed. The article presents an algorithm directly providing the steady state solution without the simulation of transients. The basic assumption is that the solution can be predicted as a periodic time and space function, which is represented by appropriate Fourier series. The developed algorithm uses discrete partial differential operators for time and space derivatives. It allows us to create finite difference equations directly from the field and circuit equations, which take the form of algebraic equations, generally non-linear. This is a unique approach developed by us, which till now did not exist (and is not mentioned) in the literature. That algorithm is tested on a simple case of a solenoid coil with a ferromagnetic and conductive cylindrical core, in 2D space of radius and time. The calculation results confirm the effectiveness of the proposed approach both qualitatively, with regard to physical phenomena in ferromagnetic and conductive material, and quantitatively, in comparison with the results from specialized commercial software.
Subject
Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction
Reference26 articles.
1. Chari, M.V.K., and Salon, S.J. (2000). Numerical Methods in Electromagnetism, Academic Press.
2. Strikwerda, J.C. (2004). Finite Difference Schemes and Partial Differential Equations, Society for Industrial and Applied Mathematics. [2nd ed.].
3. LeVeque, R.J. (2007). Finite Difference Methods for Ordinary and Partial Differential Equations, Society for Industrial and Applied Mathematics. [2nd ed.].
4. Transient simulation of power transformers using 3D finite element model coupled to electric circuit equations;Tang;IEEE Trans. Magn.,2000
5. The 3D coupled field-circuit simulation of transients in converters with conducting solid parts;Nowak;IEEE Trans. Magn.,2000