Recentering Shape Memory Alloy Passive Damper for Structural Vibration Control

This paper presents a preliminary study on the evaluation of an innovative energy dissipation system with shape memory alloys (SMAs) for structural seismic protection. A recentering shape memory alloy damper (RSMAD), in which superelastic nitinol wires are utilized as energy dissipation components,...

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Main Authors: Hui Qian, Hongnan Li, Gangbing Song, Wei Guo
Format: Article
Language:English
Published: Hindawi Limited 2013-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2013/963530
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spelling doaj-b494c5829c494cd982d1da7a121389f02020-11-24T22:32:34ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472013-01-01201310.1155/2013/963530963530Recentering Shape Memory Alloy Passive Damper for Structural Vibration ControlHui Qian0Hongnan Li1Gangbing Song2Wei Guo3School of Civil Engineering, Zhengzhou University, Zhengzhou 45000, ChinaFaculty of Infrastructure Engineering, Dalian University of Technology, Dalian 116024, ChinaFaculty of Infrastructure Engineering, Dalian University of Technology, Dalian 116024, ChinaSchool of Civil Engineering, Central South University, Changsha 410075, ChinaThis paper presents a preliminary study on the evaluation of an innovative energy dissipation system with shape memory alloys (SMAs) for structural seismic protection. A recentering shape memory alloy damper (RSMAD), in which superelastic nitinol wires are utilized as energy dissipation components, is proposed. Improved constitutive equations based on Graesser and Cozzarelli model are proposed for superelastic nitinol wires used in the damper. Cyclic tensile-compressive tests on the damper with various prestrain under different loading frequencies and displacement amplitudes were conducted. The results show that the hysteretic behaviors of the damper can be modified to best fit the needs for passive structural control applications by adjusting the pretension of the nitinol wires, and the damper performance is not sensitive to frequencies greater than 0.5 Hz. To assess the effectiveness of the dampers for structural seismic protection, nonlinear time history analysis on a ten-story steel frame with and without the dampers subjected to representative earthquake ground motions was performed. The simulation results indicate that superelastic SMA dampers are effective in mitigating the structural response of building structures subjected to strong earthquakes.http://dx.doi.org/10.1155/2013/963530
collection DOAJ
language English
format Article
sources DOAJ
author Hui Qian
Hongnan Li
Gangbing Song
Wei Guo
spellingShingle Hui Qian
Hongnan Li
Gangbing Song
Wei Guo
Recentering Shape Memory Alloy Passive Damper for Structural Vibration Control
Mathematical Problems in Engineering
author_facet Hui Qian
Hongnan Li
Gangbing Song
Wei Guo
author_sort Hui Qian
title Recentering Shape Memory Alloy Passive Damper for Structural Vibration Control
title_short Recentering Shape Memory Alloy Passive Damper for Structural Vibration Control
title_full Recentering Shape Memory Alloy Passive Damper for Structural Vibration Control
title_fullStr Recentering Shape Memory Alloy Passive Damper for Structural Vibration Control
title_full_unstemmed Recentering Shape Memory Alloy Passive Damper for Structural Vibration Control
title_sort recentering shape memory alloy passive damper for structural vibration control
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2013-01-01
description This paper presents a preliminary study on the evaluation of an innovative energy dissipation system with shape memory alloys (SMAs) for structural seismic protection. A recentering shape memory alloy damper (RSMAD), in which superelastic nitinol wires are utilized as energy dissipation components, is proposed. Improved constitutive equations based on Graesser and Cozzarelli model are proposed for superelastic nitinol wires used in the damper. Cyclic tensile-compressive tests on the damper with various prestrain under different loading frequencies and displacement amplitudes were conducted. The results show that the hysteretic behaviors of the damper can be modified to best fit the needs for passive structural control applications by adjusting the pretension of the nitinol wires, and the damper performance is not sensitive to frequencies greater than 0.5 Hz. To assess the effectiveness of the dampers for structural seismic protection, nonlinear time history analysis on a ten-story steel frame with and without the dampers subjected to representative earthquake ground motions was performed. The simulation results indicate that superelastic SMA dampers are effective in mitigating the structural response of building structures subjected to strong earthquakes.
url http://dx.doi.org/10.1155/2013/963530
work_keys_str_mv AT huiqian recenteringshapememoryalloypassivedamperforstructuralvibrationcontrol
AT hongnanli recenteringshapememoryalloypassivedamperforstructuralvibrationcontrol
AT gangbingsong recenteringshapememoryalloypassivedamperforstructuralvibrationcontrol
AT weiguo recenteringshapememoryalloypassivedamperforstructuralvibrationcontrol
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