Real-time hybrid simulation of smart base-isolated raised floor systems for high-tech industry

被引:20
作者
Chen, Pei-Ching [1 ]
Hsu, Shiau-Ching [2 ]
Zhong, You-Jin [2 ]
Wang, Shiang-Jung [1 ]
机构
[1] Natl Taiwan Univ Sci & Technol, Dept Civil & Construct Engn, 43,Sec 4,Keelung Rd, Taipei 10607, Taiwan
[2] Natl Taiwan Univ, Dept Civil Engn, 1,Sec 4,Roosevelt Rd, Taipei 10617, Taiwan
关键词
raised floor system; sloped rolling-type isolation device; magnetorheological damper; semi-active control; real-time hybrid simulation; SEISMIC PROTECTION; DELAY COMPENSATION; PERFORMANCE;
D O I
10.12989/sss.2019.23.1.091
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Adopting sloped rolling-type isolation devices underneath a raised floor system has been proved as one of the most effective approaches to mitigate seismic responses of the protected equipment installed above. However, pounding against surrounding walls or other obstructions may occur if such a base-isolated raised floor system is subjected to long-period excitation, leading to adverse effects or even more severe damage. In this study, real-time hybrid simulation (RTHS) is adopted to assess the control performance of a smart base-isolated raised floor system as it is an efficient and cost-effective experimental method. It is composed of multiple sloped rolling-type isolation devices, a rigid steel platen, four magnetorheological (MR) dampers, and protected high-tech equipment. One of the MR dampers is physically tested in the laboratory while the remainders are numerically simulated. In order to consider the effect of input excitation characteristics on the isolation performance, the smart base-isolated raised floor system is assumed to be located at the roof of a building and the ground level. Four control algorithms are designed for the MR dampers including passive-on, switching, modified switching, and fuzzy logic control. Six artificial spectrum-compatible input excitations and three slope angles of the isolation devices are considered in the RTHS. Experimental results demonstrate that the incorporation of semi-active control into a base-isolated raised floor system is effective and feasible in practice for high-tech industry.
引用
收藏
页码:91 / 106
页数:16
相关论文
共 22 条
[1]  
[Anonymous], 2010, AC156 ICC EV SERV IN
[2]   Seismic protection of smart base-isolated structures using negative stiffness device and regulated damping [J].
Bahar, Arash ;
Salavati-Khoshghalb, Mohsen ;
Ejabati, Seyed Mehdi .
SMART STRUCTURES AND SYSTEMS, 2018, 21 (03) :359-371
[3]   Adaptive time series compensator for delay compensation of servo-hydraulic actuator systems for real-time hybrid simulation [J].
Chae, Yunbyeong ;
Kazemibidokhti, Karim ;
Ricles, James M. .
EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 2013, 42 (11) :1697-1715
[4]   Modeling of phase spectrum to simulate design ground motions [J].
Chai, JF ;
Loh, CH ;
Sato, T .
JOURNAL OF THE CHINESE INSTITUTE OF ENGINEERS, 2002, 25 (04) :447-459
[5]   Dual compensation strategy for real-time hybrid testing [J].
Chen, Pei-Ching ;
Tsai, Keh-Chyuan .
EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 2013, 42 (01) :1-23
[6]   Implementation of modal control for seismically excited structures using magnetorheological dampers [J].
Cho, SW ;
Kim, BW ;
Jung, HJ ;
Lee, IW .
JOURNAL OF ENGINEERING MECHANICS-ASCE, 2005, 131 (02) :177-184
[7]   Stability and delay compensation for real-time substructure testing [J].
Darby, AP ;
Williams, MS ;
Blakeborough, A .
JOURNAL OF ENGINEERING MECHANICS, 2002, 128 (12) :1276-1284
[8]   Modeling and control of magnetorheological dampers for seismic response reduction [J].
Dyke, SJ ;
Spencer, BF ;
Sain, MK ;
Carlson, JD .
SMART MATERIALS & STRUCTURES, 1996, 5 (05) :565-575
[9]   Large-Scale Real-Time Hybrid Simulation for Evaluation of Advanced Damping System Performance [J].
Friedman, Anthony ;
Dyke, Shirley J. ;
Phillips, Brian ;
Ahn, Ryan ;
Dong, Baiping ;
Chae, Yunbyeong ;
Castaneda, Nestor ;
Jiang, Zhaoshuo ;
Zhang, Jianqiu ;
Cha, Youngjin ;
Ozdagli, Ali Irmak ;
Spencer, B. F. ;
Ricles, James ;
Christenson, Richard ;
Agrawal, Anil ;
Sause, Richard .
JOURNAL OF STRUCTURAL ENGINEERING, 2015, 141 (06)
[10]   An optimal discrete-time feedforward compensator for real-time hybrid simulation [J].
Hayati, Saeid ;
Song, Wei .
SMART STRUCTURES AND SYSTEMS, 2017, 20 (04) :483-498