Structural Health Monitoring of a Tall Building with Huge Floating Platform

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The New Headquarters of Shenzhen Stock Exchange (NHSSE), located in Shenzhen, China, is a high-rise building with a height of 228 m. One salient feature of NHSSE is its huge floating platform. It is a steel truss structure assembled with a total of 14 steel trusses in six types. It overhangs from the main tower 36 m along the long axis and 22 m along the short axis at a height of 36 m above the ground. As a result, the huge floating platform has an overall plan dimension of 98 m × 162 m and a total height of 24 m, making it one of the largest cantilever structures in the world. In view of the uniqueness of the floating platform, a long-term structural health monitoring (SHM) system has been designed and implemented on NHSSE by The Hong Kong Polytechnic University. In this monitoring system, the strain and deflection of the cantilever structure are of the utmost concern. A total of 224 vibrating-wire strain gauges have been installed to measure the strain and a novel vision-based displacement tracking system has been employed to monitor the deflection. In addition, accelerometers and a wireless sensing network (WSN) are implemented to monitor dynamic responses and modal properties of the structure. This paper reports the monitoring results of stress evolution of NHSSE during the construction process of dismantling the shoring and modal properties of NHSSE under ambient vibration environment, as well as their comparison with the prediction results through finite element analysis.

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177-187

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September 2012

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] Y.Q. Ni, Y. Xia, W.Y. Liao, J.M. Ko, Technology innovation in developing the structural health monitoring for Guangzhou New TV Tower. Structural Control and Health Monitoring. 16 (2009) 73-98.

DOI: 10.1002/stc.303

Google Scholar

[2] Y.Q. Ni, K.Y. Wong, Y. Xia, Health checks through landmark bridges to sky-high structures. Advances in Structural Engineering. 14 (2011) 103-119.

DOI: 10.1260/1369-4332.14.1.103

Google Scholar

[3] J.P. Lynch, K.H. Law, A.S. Kiremidjian, E. Carryer, C.R. Farrar, H. Sohn, D.W. Allen, B. Nadler, J.R. Wait, Design and performance validation of a wireless sensing unit for structural monitoring applications. Structural Engineering and Mechanics. 17 (2004) 393-408.

DOI: 10.12989/sem.2004.17.3_4.393

Google Scholar

[4] Y. Wang, J.P. Lynch, K.H. Law, A wireless structural health monitoring system with multithreaded sensing devices: design and validation. Structure and Infrastructure Engineering. 3 (2007) 103-120.

DOI: 10.1080/15732470600590820

Google Scholar

[5] Y.Q. Ni, B. Li, K.H. Lam, D.P. Zhu, Y. Wang, J.P. Lynch, K.H. Law, In-construction vibration monitoring of a supertall structure using a long-range wireless sensing system. Smart Structures and Systems. 7 (2011) 83-102.

DOI: 10.12989/sss.2011.7.2.083

Google Scholar

[6] B. Luo, In-construction stress of a tall building: finite element analysis versus field measurement. MSc Dissertation, Department of Civil and Structural Engineering, The Hong Kong Polytechnic University, Hong Kong, 2011.

DOI: 10.31705/wcs.2023.25

Google Scholar