DocumentCode :
143589
Title :
Modeling and simulation of a complex mechanical load using the multi-mass approach
Author :
Boutros, Antoine ; El-Jurdi, Philippe ; Kanaan, Hadi Y. ; Al-Haddad, Kamal
Author_Institution :
Fac. of Eng. - ESIB, St.-Joseph Univ., Mar Roukoz, Lebanon
fYear :
2014
fDate :
13-16 April 2014
Firstpage :
373
Lastpage :
379
Abstract :
The study and control of industrial electrical drive systems become a great challenge for scientists because of their complexity. In order to facilitate this task, the multi-mass model has been established recently. In fact, for certain industrial drive systems (rolling mills, compressors, etc.), it is necessary to take into consideration the non infinite rigidity of the mechanical link elements which causes mechanical vibrations. These vibrations are a major problem in industry because they harm the system dynamic performances and may end with the deterioration of the system structures. For this purpose, it is useful to dissociate the mechanical part into several masses in order to elaborate the correspondent multi-mass system. This paper presents a linearized model for complex mechanical load based on a two-mass system driven by a DC servomotor and connected together by an elastic link. The first step of the study consists of determining the appropriate transfer functions of the model. Then, linear regulation loops for velocity and load position control are elaborated using PI or PID regulators. As a final step, numerical simulations for different load torques are performed with Matlab/Simulink using the set of parameters of a drive system model. The simulation results show that the regulated system responds conveniently. Further more, these simulations are used to compare the dynamic performances of the different implemented control strategies.
Keywords :
drives; elasticity; mathematics computing; position control; servomotors; shear modulus; three-term control; velocity control; vibration control; DC servomotor; Matlab; PI regulators; PID regulators; Simulink; complex mechanical load; elastic link; industrial electrical drive systems; load position control; mechanical link elements; mechanical vibrations; modeling; multimass approach; non infinite rigidity; simulation; velocity control; Load modeling; Mathematical model; Numerical models; Servomotors; Torque; Vibrations; Wheels; Multi-mass modeling; computer-aided simulations; linear control; mechanical load elasticity; servomotor;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mediterranean Electrotechnical Conference (MELECON), 2014 17th IEEE
Conference_Location :
Beirut
Type :
conf
DOI :
10.1109/MELCON.2014.6820563
Filename :
6820563
Link To Document :
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