Title :
The modeling of multibody systems with fractional-order elements
Author :
Kowal, Janusz ; Lepiarz, Wojciech
Author_Institution :
Dept. of Process Control, AGH Univ. of Sci. & Technol., Krakow, Poland
Abstract :
The fractional-order models, that is models described by differential equations of arbitrary real order, are gaining popularity in advanced control theory. In this study, an implementation of fractional-order elements in multibody dynamics systems is shown. A fractional-order model of elements is used in co-analysis between multibody system modeling tool and control system modeling tool. The co-analysis uses multibody dynamics software to solve all ordinary, integer-order differential equations and control system modeling software to solve fractional-order differential equations. Results of such simulation may be used in virtual prototype built in MSC Adams software environment to simulate behavior of multibody fractional-order system. Two example models are shown in this paper, one with 1 degree of freedom (DOF) and one with 6 DOF. The research was conducted in order to prepare software tools and methods, which can be used in modeling of bionic multibody systems with fractional-order elements. A co-simulation between control and multibody system modeling software tools enables accurate and cost-effective development of bionic devices. Furthermore, fractional-order models of bionic elements describe certain phenomena better than in integer-order models.
Keywords :
control engineering computing; control system synthesis; differential equations; dynamics; mathematics computing; MSC Adams software environment; advanced control theory; arbitrary real order; behavior simulation; bionic devices; bionic elements; bionic multibody systems; control system modeling software; control system modeling tool; fractional-order differential equations; fractional-order elements; fractional-order models; integer-order differential equations; integer-order models; multibody dynamics software; multibody dynamics systems; multibody fractional-order system; multibody system modeling software tools; multibody system modeling tool; multibody systems modeling; sych simulation; virtual prototype; Biological system modeling; Control systems; Damping; Differential equations; MATLAB; Mathematical model; Shock absorbers; biomimetics; bionics; fractional calculus; fractional-order control; fractional-order plants; myltibody dynamic systems;
Conference_Titel :
Carpathian Control Conference (ICCC), 2013 14th International
Conference_Location :
Rytro
Print_ISBN :
978-1-4673-4488-3
DOI :
10.1109/CarpathianCC.2013.6560539