Research on vibration mechanism and control technology of building structure under earthquake action

The large engineering building structures are costly and thus complex to maintain due to their chances of failure under various hazardous conditions. These buildings are needed to be protected against the damage due to the hazards like earthquake, wind, seismic waves, etc. This article focuses on th...

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Main Authors: Hongyan Gu, Huimin Liang, Guoyun Tong, Fang Liu, Yu Liu, Xing Liu, Zhen Jia, John Paul
Format: Article
Language:English
Published: JVE International 2021-09-01
Series:Journal of Vibroengineering
Subjects:
Online Access:https://www.jvejournals.com/article/22090
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spelling doaj-5f506780c51b4b89afdaccf61c43c4c92021-10-01T14:23:22ZengJVE InternationalJournal of Vibroengineering1392-87162538-84602021-09-012361395140610.21595/jve.2021.2209022090Research on vibration mechanism and control technology of building structure under earthquake actionHongyan Gu0Huimin Liang1Guoyun Tong2Fang Liu3Yu Liu4Xing Liu5Zhen Jia6John Paul7Department of Building Engineering, Hebei College of Industry and Technology, Shijiazhuang Hebei, 050091, ChinaDepartment of Building Engineering, Hebei College of Industry and Technology, Shijiazhuang Hebei, 050091, ChinaDepartment of Building Engineering, Hebei College of Industry and Technology, Shijiazhuang Hebei, 050091, ChinaDepartment of Building Engineering, Hebei College of Industry and Technology, Shijiazhuang Hebei, 050091, ChinaDepartment of Building Engineering, Hebei College of Industry and Technology, Shijiazhuang Hebei, 050091, ChinaDepartment of Building Engineering, Hebei College of Industry and Technology, Shijiazhuang Hebei, 050091, ChinaDepartment of Building Engineering, Hebei College of Industry and Technology, Shijiazhuang Hebei, 050091, ChinaDepartment of Computer and Electronics Engineering, Universiti Malaysia Pahang, Pahang, MalaysiaThe large engineering building structures are costly and thus complex to maintain due to their chances of failure under various hazardous conditions. These buildings are needed to be protected against the damage due to the hazards like earthquake, wind, seismic waves, etc. This article focuses on the investigation of vibration mechanism and control strategies for protection of buildings from the hazardous situations. The article presents a robust solution of utilization of magnetorheological dampers for vibration control applications in complex structures. It aims at developing a reliable decentralized model to track and monitor the building structures and control them before the earthquake actions are encountered. This article develops a novel dynamically optimized and decentralized mechanism using the PID controller for the self-regulation of conventional PID controller-based method. The major goal of decentralization is to ensure that each of the subsystem is compatible with one another and can also work independently with a higher efficiency at the time of fault. The combination of decentralization and self-regulation is tested for a tall building structural model with 10 floors. The proposed approach is compared with the conventional PID based mechanism under the faulty condition in order to illustrate its dynamism and usefulness for practical implementation. The proposed simulated model provides 95.54 % earthquake tracking precision and can be used for developing the earthquake protective schemes for the adequate survivability of tall building structures as well as to safeguard the human occupant in it.https://www.jvejournals.com/article/22090engineering building structuresvibration mechanismseismic wavesmagnetorheological dampers earthquake actions
collection DOAJ
language English
format Article
sources DOAJ
author Hongyan Gu
Huimin Liang
Guoyun Tong
Fang Liu
Yu Liu
Xing Liu
Zhen Jia
John Paul
spellingShingle Hongyan Gu
Huimin Liang
Guoyun Tong
Fang Liu
Yu Liu
Xing Liu
Zhen Jia
John Paul
Research on vibration mechanism and control technology of building structure under earthquake action
Journal of Vibroengineering
engineering building structures
vibration mechanism
seismic waves
magnetorheological dampers earthquake actions
author_facet Hongyan Gu
Huimin Liang
Guoyun Tong
Fang Liu
Yu Liu
Xing Liu
Zhen Jia
John Paul
author_sort Hongyan Gu
title Research on vibration mechanism and control technology of building structure under earthquake action
title_short Research on vibration mechanism and control technology of building structure under earthquake action
title_full Research on vibration mechanism and control technology of building structure under earthquake action
title_fullStr Research on vibration mechanism and control technology of building structure under earthquake action
title_full_unstemmed Research on vibration mechanism and control technology of building structure under earthquake action
title_sort research on vibration mechanism and control technology of building structure under earthquake action
publisher JVE International
series Journal of Vibroengineering
issn 1392-8716
2538-8460
publishDate 2021-09-01
description The large engineering building structures are costly and thus complex to maintain due to their chances of failure under various hazardous conditions. These buildings are needed to be protected against the damage due to the hazards like earthquake, wind, seismic waves, etc. This article focuses on the investigation of vibration mechanism and control strategies for protection of buildings from the hazardous situations. The article presents a robust solution of utilization of magnetorheological dampers for vibration control applications in complex structures. It aims at developing a reliable decentralized model to track and monitor the building structures and control them before the earthquake actions are encountered. This article develops a novel dynamically optimized and decentralized mechanism using the PID controller for the self-regulation of conventional PID controller-based method. The major goal of decentralization is to ensure that each of the subsystem is compatible with one another and can also work independently with a higher efficiency at the time of fault. The combination of decentralization and self-regulation is tested for a tall building structural model with 10 floors. The proposed approach is compared with the conventional PID based mechanism under the faulty condition in order to illustrate its dynamism and usefulness for practical implementation. The proposed simulated model provides 95.54 % earthquake tracking precision and can be used for developing the earthquake protective schemes for the adequate survivability of tall building structures as well as to safeguard the human occupant in it.
topic engineering building structures
vibration mechanism
seismic waves
magnetorheological dampers earthquake actions
url https://www.jvejournals.com/article/22090
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