Title :
Preliminary feasibility studies of real-time substructuring control strategies
Author :
Chen, C.Y. ; Hxiao, W.D. ; Chen, Yu Christine ; Tu, J.Y.
Author_Institution :
Dept. of Power Mech. Eng., Nat. Tsing Hua Univ., Hsinchu, Taiwan
Abstract :
Dynamic substructuring is a hybrid testing strategy, which enables full-size, critical components of an entire engineering system to be physically tested, whilst the remaining parts are simulated numerically. Successful tests require a robust controller to compensate for unwanted dynamics introduced by supplemental actuators within the physical substructure and to achieve synchronized responses of the numerical and physical parts in real-time. The aim of this feasibility study tries to identify the relative strength and weakness of three types of substructuring control strategy in literature, including (i) emulated-system-based (ii) numerical-substructure-based, and (iii) output-based controllers. The first two controllers are synthesized via conventional dynamics-based approaches, while the third using forward-prediction and curve-fitting concepts is classified as a geometry-based strategy. A practical substructuring example using a shaking-table system is presented for control comparisons. In the presence of uncertainties with the actuators or specimens, simulation studies show that these controllers exhibit distinct robustness in different cases.
Keywords :
actuators; adaptive control; compensation; curve fitting; geotechnical structures; real-time systems; robust control; structural engineering; synchronisation; uncertain systems; control comparisons; conventional dynamics-based approach; critical components; curve-fitting concepts; dynamic substructuring; emulated-system-based controller; engineering system; forward-prediction; geometry-based strategy; hybrid testing strategy; numerical part; numerical-substructure-based controller; output-based controller; physical part; physical substructure; practical substructuring example; real-time substructuring control strategy; relative strength; robust controller; robustness; shaking-table system; supplemental actuators; synchronized responses; unwanted dynamics; Control systems; Decision support systems; Delays; Equations; Mathematical model; Niobium; Robustness; delay compensation; emulated-system-based; numerical-substructure-based; output-based; substructuring;
Conference_Titel :
Control Conference (ASCC), 2013 9th Asian
Conference_Location :
Istanbul
Print_ISBN :
978-1-4673-5767-8
DOI :
10.1109/ASCC.2013.6606113