Cargando…

Response Attenuation of a Structure Equipped with ATMD under Seismic Excitations Using Methods of Online Simple Adaptive Controller and Online Adaptive Type-2 Neural-Fuzzy Controller

The present study aims to design a robust adaptive controller employed in the active tuned mass damper (ATMD) system to overcome undesirable vibrations in multistory buildings under seismic excitations. We propose a novel adaptive type-2 neural-fuzzy controller (AT2NF). All system parameters are tak...

Descripción completa

Detalles Bibliográficos
Autores principales: Sabetahd, Rasoul, Mousavi Ghasemi, Seyed Arash, Vafaei Poursorkhabi, Ramin, Mohammadzadeh, Ardashir, Zandi, Yousef
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9270154/
https://www.ncbi.nlm.nih.gov/pubmed/35814576
http://dx.doi.org/10.1155/2022/5832043
_version_ 1784744397415383040
author Sabetahd, Rasoul
Mousavi Ghasemi, Seyed Arash
Vafaei Poursorkhabi, Ramin
Mohammadzadeh, Ardashir
Zandi, Yousef
author_facet Sabetahd, Rasoul
Mousavi Ghasemi, Seyed Arash
Vafaei Poursorkhabi, Ramin
Mohammadzadeh, Ardashir
Zandi, Yousef
author_sort Sabetahd, Rasoul
collection PubMed
description The present study aims to design a robust adaptive controller employed in the active tuned mass damper (ATMD) system to overcome undesirable vibrations in multistory buildings under seismic excitations. We propose a novel adaptive type-2 neural-fuzzy controller (AT2NF). All system parameters are taken as unknowns. The MLP neural network is used to extract the Jacobian and estimate the structural model; then, the estimated model is applied to the controller online. To tune the control force applied to the ATMD and achieve the control targets, the controller parameters are adaptively trained using the extended Kalman Filter (EKF) and the error back-propagation algorithm. A PID controller is also included in this method to increase the stability and robustness of the adaptive type-2 neural-fuzzy controller against seismic vibrations. An online simple adaptive controller (OSAC) is studied to demonstrate the suggested controller's superiority. The OSAC is based on adaptive control of the implicit reference model. In this proposed method, the EKF is used to tune the controller parameters online as a novel feature. The uncertainty associated with identifying the mechanical properties of structures, such as mass and stiffness, is one of the primary challenges in the real-time control of structures. This paper investigates how both controllers cope with parametric uncertainties under far-field and near-field seismic excitation. According to numerical results, the AT2NF controller outperforms OSAC in minimizing the dynamic responses of the structure during an earthquake and accomplishing control objectives when the structure's characteristics change.
format Online
Article
Text
id pubmed-9270154
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-92701542022-07-09 Response Attenuation of a Structure Equipped with ATMD under Seismic Excitations Using Methods of Online Simple Adaptive Controller and Online Adaptive Type-2 Neural-Fuzzy Controller Sabetahd, Rasoul Mousavi Ghasemi, Seyed Arash Vafaei Poursorkhabi, Ramin Mohammadzadeh, Ardashir Zandi, Yousef Comput Intell Neurosci Research Article The present study aims to design a robust adaptive controller employed in the active tuned mass damper (ATMD) system to overcome undesirable vibrations in multistory buildings under seismic excitations. We propose a novel adaptive type-2 neural-fuzzy controller (AT2NF). All system parameters are taken as unknowns. The MLP neural network is used to extract the Jacobian and estimate the structural model; then, the estimated model is applied to the controller online. To tune the control force applied to the ATMD and achieve the control targets, the controller parameters are adaptively trained using the extended Kalman Filter (EKF) and the error back-propagation algorithm. A PID controller is also included in this method to increase the stability and robustness of the adaptive type-2 neural-fuzzy controller against seismic vibrations. An online simple adaptive controller (OSAC) is studied to demonstrate the suggested controller's superiority. The OSAC is based on adaptive control of the implicit reference model. In this proposed method, the EKF is used to tune the controller parameters online as a novel feature. The uncertainty associated with identifying the mechanical properties of structures, such as mass and stiffness, is one of the primary challenges in the real-time control of structures. This paper investigates how both controllers cope with parametric uncertainties under far-field and near-field seismic excitation. According to numerical results, the AT2NF controller outperforms OSAC in minimizing the dynamic responses of the structure during an earthquake and accomplishing control objectives when the structure's characteristics change. Hindawi 2022-07-01 /pmc/articles/PMC9270154/ /pubmed/35814576 http://dx.doi.org/10.1155/2022/5832043 Text en Copyright © 2022 Rasoul Sabetahd et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Sabetahd, Rasoul
Mousavi Ghasemi, Seyed Arash
Vafaei Poursorkhabi, Ramin
Mohammadzadeh, Ardashir
Zandi, Yousef
Response Attenuation of a Structure Equipped with ATMD under Seismic Excitations Using Methods of Online Simple Adaptive Controller and Online Adaptive Type-2 Neural-Fuzzy Controller
title Response Attenuation of a Structure Equipped with ATMD under Seismic Excitations Using Methods of Online Simple Adaptive Controller and Online Adaptive Type-2 Neural-Fuzzy Controller
title_full Response Attenuation of a Structure Equipped with ATMD under Seismic Excitations Using Methods of Online Simple Adaptive Controller and Online Adaptive Type-2 Neural-Fuzzy Controller
title_fullStr Response Attenuation of a Structure Equipped with ATMD under Seismic Excitations Using Methods of Online Simple Adaptive Controller and Online Adaptive Type-2 Neural-Fuzzy Controller
title_full_unstemmed Response Attenuation of a Structure Equipped with ATMD under Seismic Excitations Using Methods of Online Simple Adaptive Controller and Online Adaptive Type-2 Neural-Fuzzy Controller
title_short Response Attenuation of a Structure Equipped with ATMD under Seismic Excitations Using Methods of Online Simple Adaptive Controller and Online Adaptive Type-2 Neural-Fuzzy Controller
title_sort response attenuation of a structure equipped with atmd under seismic excitations using methods of online simple adaptive controller and online adaptive type-2 neural-fuzzy controller
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9270154/
https://www.ncbi.nlm.nih.gov/pubmed/35814576
http://dx.doi.org/10.1155/2022/5832043
work_keys_str_mv AT sabetahdrasoul responseattenuationofastructureequippedwithatmdunderseismicexcitationsusingmethodsofonlinesimpleadaptivecontrollerandonlineadaptivetype2neuralfuzzycontroller
AT mousavighasemiseyedarash responseattenuationofastructureequippedwithatmdunderseismicexcitationsusingmethodsofonlinesimpleadaptivecontrollerandonlineadaptivetype2neuralfuzzycontroller
AT vafaeipoursorkhabiramin responseattenuationofastructureequippedwithatmdunderseismicexcitationsusingmethodsofonlinesimpleadaptivecontrollerandonlineadaptivetype2neuralfuzzycontroller
AT mohammadzadehardashir responseattenuationofastructureequippedwithatmdunderseismicexcitationsusingmethodsofonlinesimpleadaptivecontrollerandonlineadaptivetype2neuralfuzzycontroller
AT zandiyousef responseattenuationofastructureequippedwithatmdunderseismicexcitationsusingmethodsofonlinesimpleadaptivecontrollerandonlineadaptivetype2neuralfuzzycontroller