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Issue title: Electromagnetic Fields in Mechatronics, Electrical and Electronic Engineering
Guest editors: P. Di Barba, Roberto Galdi, M.E. Mognaschi and S. Wiak
Article type: Research Article
Authors: Zuidema, Gerlofa; | Krop, Dave C.J.a | Lomonova, Elena A.a
Affiliations: [a] Department of Electrical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands
Correspondence: [*] Corresponding author: Gerlof Zuidema, Department of Electrical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands. E-mail: g.zuidema@tue.nl
Abstract: A multiple-input and multiple-output planar actuator is proposed, which utilizes mechanically driven stator magnet arrays to levitate a permanent magnet mover. A state of levitation and actuation is obtained by mechanically altering the orientation of the stator magnets to control the forces and torques on the mover. A challenge for the design and control of the actuator is inverting the relationship between the force and stator magnet rotation angles, as there is no closed-form analytical solution. In this study, a feed-forward neural network is applied to model the forward relation between stator magnet angle input and a force and torque output to reduce the forward computation time for the design process and for error estimation in real-time applications. Additionally, the neural network is considered for inverting the solution for a motion profile sampled at 1000 Hz. The developed forward model is able to calculate the forces and torques on the mover a factor 10 faster than the equivalent charge or Fourier model with an absolute error of 3 mN and 0.1 mNm for the forces and torques, respectively, and a feed-forward neural network is able to accurately learn an inverse solution for small motion profiles.
Keywords: Magnetic levitation, permanent magnets, inverse problem, neural network
DOI: 10.3233/JAE-230221
Journal: International Journal of Applied Electromagnetics and Mechanics, vol. 76, no. 1-2, pp. 197-204, 2024
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