Reprint

Advanced Theory and Application of Magnetic Actuators

Edited by
July 2024
200 pages
  • ISBN978-3-7258-1753-5 (Hardback)
  • ISBN978-3-7258-1754-2 (PDF)
https://doi.org/10.3390/books978-3-7258-1754-2 (registering)

This book is a reprint of the Special Issue Advanced Theory and Application of Magnetic Actuators that was published in

Chemistry & Materials Science
Engineering
Summary

Magnetic actuators are actuators which use magnetic force, or Lorentz force, and they are widely used in industry, defense, aviation, the aerospace industry, and daily life. Magnetic actuators integrate electromagnetism, electronic technology, superconducting and cryogenic technology, control engineering, signal processing, mechanics, and dynamics. They have attracted extensive attention from scholars at home and abroad, thus representing a research hotspot in related fields. In order to solve the basic scientific problems and key technical problems related to magnetic actuators, as well as to gather the frontier achievements of magnetic actuators and vibration control, our journal, Actuators, has set up a special issue, entitled "Advanced Theory and Application of Magnetic Actuators", which contains 12 articles that discuss actuators, their designs, and the use of magnetic force or Lorentz force. The articles presented mainly focus on the nonlinear bearing characteristics of active magnetic bearings, design and implementation of permanent and electromagnet composite vibration isolation systems, magnetic suspended flywheel energy storage systems, the characteristic analysis of an electromagnetic actuator for magnetic levitation transportation, magnetically driven oil-free scroll compressors, and so on.

Format
  • Hardback
License and Copyright
© 2024 by the authors; CC BY-NC-ND license
Keywords
active magnetic bearing; touchdown bearing; rotor dynamics; dry-friction whirl/whip; oil-free scroll compressor; magnetic drive; centralized control; matrix decoupling; PID control; experimental study; unbalanced vibration; LMS; maglev motor; vibration control; foundation vibration; micro-EDM; magnetic levitation actuator; magnetic field characteristics; dynamic characteristics; vehicle suspension; energy-harvesting characteristics; orthogonal analysis; experimental verification; electrical discharge machining (EDM); magnetic actuator; domain adjustment mechanism; variable domain fuzzy PID; electromagnetic actuator; Halbach array; characteristic analysis; finite element method; electromagnetic drive; mixed sensitivity; robust control; differential control; magnetic suspension flywheel energy storage; natural frequency; vibration suppression; insertion position of the notch filter; vibration; negative stiffness; permanent and electromagnet composite vibration isolation; vibration attenuation rate; Delta robot; vibration suppression; modal analysis; multimodal; input shaping; magnetic bearings; nonlinear bearing characteristic; unbalance response; dual-rotor system; finite element method