Parametric model of electric machines based on exponential Fourier approximations of magnetic air gap flux density and inductance

Author:

Borchardt Norman,Kasper Roland

Abstract

Purpose This study aims to present a parametric model of a novel electrical machine, based on a slotless air gap winding, allowing for fast and precise magnetic circuit calculations. Design/methodology/approach Approximations of Fourier coefficients through an exponential function deliver the required nonlinear air gap flux density and inductance. Accordingly, major machine characteristics, such as back-EMF and torque, can be calculated analytically with high speed and precision. A physical model of the electrical machine with air gap windings is given. It is based on a finite element analysis of the air gap magnetic flux density and inductance. The air gap height and the permanent magnetic height are considered as magnetic circuit parameters. Findings In total, 11 Fourier coefficient matrixes with 65 sampling points each were generated. From each, matrix a two-dimensional surface function was approximated by using exponentials. Optimal parameters were calculated by the least-squares method. Comparison with the finite element model demonstrates a very low error of the analytical approximation for all Fourier coefficients considered. Finally, the dynamics of an electrical machine, modeled using the preceding magnetic flux density approximation, are analyzed in MATLAB Simulink. Required approximations of the phase self-inductance and mutual inductance were given. Accordingly, the effects of the two magnetic circuit parameters on the dynamics of electrical machine current as well as the electrical machine torque are explained. Originality/value The presented model offers high accuracy comparable to FE-models, needing only very limited computational complexity.

Publisher

Emerald

Subject

Applied Mathematics,Electrical and Electronic Engineering,Computational Theory and Mathematics,Computer Science Applications

Reference17 articles.

1. Borchardt, N. (2014), “Modeling, electromechanical design, and validation of a wheel-hub drive with slotless air gap winding and high gravimetric power density”, PhD thesis, Otto von Guericke University Magdeburg.

2. Nonlinear design optimization of electric machines by using parametric fourier coefficients of air gap flux density,2016

3. Design of a wheel-hub motor with air gap winding and simultaneous utilization of all magnetic poles,2012

4. Winding machine for automated production of an innovative air gap winding for lightweight electric machines;IEEE/ASME Transactions on Mechatronics,2016

5. Mechatronic model of a novel slotless permanent magnet DC-motor with air gap winding design,2013

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