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Verification of a Stiffness-Variable Control System with Feed-Forward Predictive Earthquake Energy Analysis

Semi-active isolation systems with controllable stiffness have been widely developed in the field of seismic mitigation. Most systems with controllable stiffness perform more robustly and effectively for far-field earthquakes than for near-fault earthquakes. Consequently, a comprehensive system that...

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Autores principales: Lin, Tzu-Kang, Chandrasekhara, Tappiti, Liu, Zheng-Jia, Chen, Ko-Yi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8619203/
https://www.ncbi.nlm.nih.gov/pubmed/34833840
http://dx.doi.org/10.3390/s21227764
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author Lin, Tzu-Kang
Chandrasekhara, Tappiti
Liu, Zheng-Jia
Chen, Ko-Yi
author_facet Lin, Tzu-Kang
Chandrasekhara, Tappiti
Liu, Zheng-Jia
Chen, Ko-Yi
author_sort Lin, Tzu-Kang
collection PubMed
description Semi-active isolation systems with controllable stiffness have been widely developed in the field of seismic mitigation. Most systems with controllable stiffness perform more robustly and effectively for far-field earthquakes than for near-fault earthquakes. Consequently, a comprehensive system that provides comparable reductions in seismic responses to both near-fault and far-field excitations is required. In this regard, a new algorithm called Feed-Forward Predictive Earthquake Energy Analysis (FPEEA) is proposed to identify the ground motion characteristics of and reduce the structural responses to earthquakes. The energy distribution of the seismic velocity spectrum is considered, and the balance between the kinetic energy and potential energy is optimized to reduce the seismic energy. To demonstrate the performance of the FPEEA algorithm, a two-degree-of-freedom structure was used as the benchmark in the numerical simulation. The peak structural responses under two near-fault and far-field earthquakes of different earthquake intensities were simulated. The isolation layer displacement was suppressed most by the FPEEA, which outperformed the other three control methods. Moreover, superior control on superstructure acceleration was also supported by the FPEEA. Experimental verification was then conducted with shaking table test, and the satisfactory performance of the FPEEA on both isolation layer displacement and superstructure acceleration was demonstrated again. In summary, the proposed FPEEA has potential for practical application to unexpected near-fault and far-field earthquakes.
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spelling pubmed-86192032021-11-27 Verification of a Stiffness-Variable Control System with Feed-Forward Predictive Earthquake Energy Analysis Lin, Tzu-Kang Chandrasekhara, Tappiti Liu, Zheng-Jia Chen, Ko-Yi Sensors (Basel) Article Semi-active isolation systems with controllable stiffness have been widely developed in the field of seismic mitigation. Most systems with controllable stiffness perform more robustly and effectively for far-field earthquakes than for near-fault earthquakes. Consequently, a comprehensive system that provides comparable reductions in seismic responses to both near-fault and far-field excitations is required. In this regard, a new algorithm called Feed-Forward Predictive Earthquake Energy Analysis (FPEEA) is proposed to identify the ground motion characteristics of and reduce the structural responses to earthquakes. The energy distribution of the seismic velocity spectrum is considered, and the balance between the kinetic energy and potential energy is optimized to reduce the seismic energy. To demonstrate the performance of the FPEEA algorithm, a two-degree-of-freedom structure was used as the benchmark in the numerical simulation. The peak structural responses under two near-fault and far-field earthquakes of different earthquake intensities were simulated. The isolation layer displacement was suppressed most by the FPEEA, which outperformed the other three control methods. Moreover, superior control on superstructure acceleration was also supported by the FPEEA. Experimental verification was then conducted with shaking table test, and the satisfactory performance of the FPEEA on both isolation layer displacement and superstructure acceleration was demonstrated again. In summary, the proposed FPEEA has potential for practical application to unexpected near-fault and far-field earthquakes. MDPI 2021-11-22 /pmc/articles/PMC8619203/ /pubmed/34833840 http://dx.doi.org/10.3390/s21227764 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lin, Tzu-Kang
Chandrasekhara, Tappiti
Liu, Zheng-Jia
Chen, Ko-Yi
Verification of a Stiffness-Variable Control System with Feed-Forward Predictive Earthquake Energy Analysis
title Verification of a Stiffness-Variable Control System with Feed-Forward Predictive Earthquake Energy Analysis
title_full Verification of a Stiffness-Variable Control System with Feed-Forward Predictive Earthquake Energy Analysis
title_fullStr Verification of a Stiffness-Variable Control System with Feed-Forward Predictive Earthquake Energy Analysis
title_full_unstemmed Verification of a Stiffness-Variable Control System with Feed-Forward Predictive Earthquake Energy Analysis
title_short Verification of a Stiffness-Variable Control System with Feed-Forward Predictive Earthquake Energy Analysis
title_sort verification of a stiffness-variable control system with feed-forward predictive earthquake energy analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8619203/
https://www.ncbi.nlm.nih.gov/pubmed/34833840
http://dx.doi.org/10.3390/s21227764
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