
Modelling of a direct‐driven electromechanical actuation system based on the Lagrange–Maxwell equation
Author(s) -
Long Yun,
Du Jinhua,
Yang Kun,
Yuan Shangbin
Publication year - 2021
Publication title -
iet electric power applications
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.815
H-Index - 97
eISSN - 1751-8679
pISSN - 1751-8660
DOI - 10.1049/elp2.12111
Subject(s) - torque , control theory (sociology) , flexibility (engineering) , backlash , cascade , lagrange multiplier , coupling (piping) , control engineering , computer science , engineering , mathematics , physics , mechanical engineering , mathematical optimization , statistics , control (management) , artificial intelligence , chemical engineering , thermodynamics
This study proposes an integrated non‐linear modelling method for an electromechanical actuation system directly driven by the switched reluctance motor (SDEMA). The mathematical model of the SDEMA system is established by energy analysis and calculation according to the proposed method, which omits the complex analysis of force or torque transmission in the cascade modelling method. By using the Lagrange–Maxwell equation and establishing the energy models of non‐linear factors that include the friction, backlash, and flexibility, both the electromechanical coupling effects and the non‐linear factors of the SDEMA system are considered simultaneously in the proposed method. To verify the feasibility and effectiveness of the proposed method, three modelling methods of the SDEMA system are comparatively studied through the simulations and experiments. The results of the simulations and experiments indicate that the proposed integrative non‐linear model can reflect the dynamic performance of the SDEMA system more accurately.