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contributor authorPei-Ching Chen
contributor authorChe-Wei Chou
contributor authorWei-Jung Wang
date accessioned2024-04-27T22:30:08Z
date available2024-04-27T22:30:08Z
date issued2024/03/01
identifier other10.1061-JSENDH.STENG-12695.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4296804
description abstractActive mass dampers (AMDs) have been used to suppress vibration of structures subjected to dynamic loading. Generally, controller design of AMD requires an identified numerical model of the structure. However, unmodeled dynamics and system uncertainties could lead to mediocre control performance. In this study, a novel controller synthesis method of AMD named direct excitation with machine learning (DEML) is proposed and verified. In DEML, the AMD on top of the structure generates trivial excitation with sufficient bandwidth. Then the corresponding structural acceleration response is collected and used for training a controller formulated in an artificial neural network. Accordingly, the associated controller can be realized and implemented to generate control force from the structural acceleration response directly. Seismic control performance of the controller synthesized by DEML was verified numerically in which 9-story and 27-story building models were considered. Moreover, shake table testing of an AMD on top of a 3-story structural specimen was conducted to further validate the effectiveness of the proposed DEML. Experimental results demonstrate that the controller synthesized by DEML achieves competitive seismic control performance compared with a conventional linear-quadratic Gaussian controller.
publisherASCE
titleRapid Controller Generation for Vibration Suppression of Structures Using Direct Excitation with Machine Learning
typeJournal Article
journal volume150
journal issue3
journal titleJournal of Structural Engineering
identifier doi10.1061/JSENDH.STENG-12695
journal fristpage04023237-1
journal lastpage04023237-12
page12
treeJournal of Structural Engineering:;2024:;Volume ( 150 ):;issue: 003
contenttypeFulltext


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