Please use this identifier to cite or link to this item: http://hdl.handle.net/11452/30671
Title: Development of a bond graph model for electromechanical actuators
Authors: Bursa Uludağ Üniversitesi/Mühendislik Fakültesi/Otomotiv Mühendisliği Bölümü.
0000-0003-3292-8324
Kocabıcak, Zeliha Kamış
9273196500
Keywords: Electromechanical actuator
Mechatronics
Modeling
Bond graph
Simulation
Systems
Materials science
Actuator disks
Electromechanical devices
Graph theory
Magnetic circuits
Magnetic leakage
Matlab
Algebraic equations
Bond graph method
Bond graph model
Mathematical concepts
Matlab/Simulink modeling
Nonlinear effect
Simulation time
Static and dynamic modeling
Electromechanical actuators
Issue Date: 1-May-2020
Publisher: Walter de Gruyter
Citation: Kocabıçak, Z. K. (2020). "Development of a bond graph model for electromechanical actuators". Materials Testing, 62(5), 459-464.
Abstract: This article addresses the bond graph model that allows for better comprehension of what the physical and mathematical concepts involved in electromechanical actuators are. In this study a disc type electromechanical actuator is modeled according to the bond graph method. Nonlinear effects such as flux path permeances, leakage loss and material saturation in a magnetic circuit are taken into account. The model is run on 20-sim 4.7 software, which allows for working directly with bond graph concepts. Simulation run-time is approximately 0.3 s for the simulation time of 12 ms. Results achieved with this model are compared with an MATLAB/Simulink model prepared using magnetic circuit algebraic equations. It was determined that the results of both models are almost identical. The static and dynamic model results are also verified by test results. As a consequence, a simple, fast running, accurate and easy-to-understand comprehensive bond graph model with magnetic circuit characteristics was developed. The model can be adapted to any type of electromechanical actuators with proper arrangement.
URI: https://doi.org/10.3139/120.111504
https://www.degruyter.com/document/doi/10.3139/120.111504/html
http://hdl.handle.net/11452/30671
ISSN: 0025-5300
2195-8572
Appears in Collections:Scopus
Web of Science

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