DocumentCode :
518697
Title :
Investigations of NCTF with input shaping for sway control of a double-pendulum-type overhead crane
Author :
Ahmad, M.A. ; Ismail, R. M T Raja ; Ramli, M.S. ; Hambali, N.
Author_Institution :
Fac. of Electr. & Electron. Eng., Univ. Malaysia Pahang, Kuantan, Malaysia
Volume :
3
fYear :
2010
fDate :
27-29 March 2010
Firstpage :
456
Lastpage :
461
Abstract :
This paper presents investigations into the development of hybrid control schemes for trajectory tracking and anti-swaying control of a double-pendulum-type overhead crane (DPTOC) system. A nonlinear DPTOC system is considered and the dynamic model of the system is derived using the Euler-Lagrange formulation. To study the effectiveness of the controllers, initially nominal characteristics following trajectory following (NCTF) is developed for position control of cart movement. The controller design, which is comprised of a nominal characteristic trajectory (NCT) and PI compensator, is used to make the cart motion follow the NCT. This is then extended to incorporate input shaping schemes for anti-swaying control of the system. The positive input shaper with different orders was design based on properties of the system. The results of the response with the controllers are presented in time and frequency domains. The performances of hybrid control schemes are examined in terms of level of input tracking capability, sway angle reduction and time response specifications in comparison to NCTF controller. Finally, a comparative assessment of the control techniques is discussed and presented.
Keywords :
control system synthesis; cranes; nonlinear control systems; pendulums; position control; Euler-Lagrange formulation; NCTF; PI compensator; antiswaying control; cart movement; controller design; double-pendulum-type overhead crane system; hybrid control scheme; input shaping; nominal characteristic trajectory; nominal characteristics following trajectory following; nonlinear DPTOC system; position control; sway control; trajectory tracking; Control systems; Cranes; Frequency domain analysis; Fuzzy logic; Motion control; Nonlinear dynamical systems; Open loop systems; Position control; Shape control; Trajectory; Double-pendulum-type overhead crane; NCTF control; anti-sway control; input shaping;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Computer Control (ICACC), 2010 2nd International Conference on
Conference_Location :
Shenyang
Print_ISBN :
978-1-4244-5845-5
Type :
conf
DOI :
10.1109/ICACC.2010.5486817
Filename :
5486817
Link To Document :
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