Robust Optimal Damper Placement of Nonlinear Oil Dampers With Uncertainty Using Critical Double Impulse

A new robust method for optimal damper placement is presented for building structures under the critical double impulse. Oil dampers are treated here as representative supplemental dampers to control the seismic response of high-rise buildings. Such oil dampers usually obey a bi-linear force-velocit...

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Main Authors: Kohei Fujita, Ryota Wataya, Izuru Takewaki
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-08-01
Series:Frontiers in Built Environment
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fbuil.2021.744973/full
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spelling doaj-3bece6cf6cd945df9e52f8699582628b2021-08-20T05:18:12ZengFrontiers Media S.A.Frontiers in Built Environment2297-33622021-08-01710.3389/fbuil.2021.744973744973Robust Optimal Damper Placement of Nonlinear Oil Dampers With Uncertainty Using Critical Double ImpulseKohei FujitaRyota WatayaIzuru TakewakiA new robust method for optimal damper placement is presented for building structures under the critical double impulse. Oil dampers are treated here as representative supplemental dampers to control the seismic response of high-rise buildings. Such oil dampers usually obey a bi-linear force-velocity relation in controlling the maximum damping force through a relief mechanism to avoid the occurrence of excessive design forces in surrounding frames. The influence of uncertainty in characteristics of those bi-linear oil dampers on building structural safety is investigated. For the efficient evaluation of dynamic performance, the resonant critical double impulse is used as the base input instead of actual earthquake ground motions. Since the critical double impulse is determined to maximize the input energy to the objective building by changing the second impulse timing, uncertainties in input ground motions can be taken into account in a robust manner. To consider these various uncertainties, the robustness function based on the Info-Gap model is used in the robust optimization to assess structural performance variations caused by various uncertainties in the structural design phase. In this paper, a new innovative objective function in the robust optimal damper placement problem is proposed to enhance the robustness of structural performance under the variation of structural parameters by comparing the robustness function of the robust design with that of an ordinary optimal damper placement without considering uncertainties. Numerical examples of the robust optimal design of linear and bi-linear oil damper placements are shown for 10-story and 20-story planar building frame models. Structural performances of the robust optimal design to the conventional design earthquake ground motions are examined to investigate the validity of using the critical double impulse in the structural design under uncertainties.https://www.frontiersin.org/articles/10.3389/fbuil.2021.744973/fullrobust optimizationdamper placementcritical double impulsebi-linear oil damperrobustness functionuncertainty analysis
collection DOAJ
language English
format Article
sources DOAJ
author Kohei Fujita
Ryota Wataya
Izuru Takewaki
spellingShingle Kohei Fujita
Ryota Wataya
Izuru Takewaki
Robust Optimal Damper Placement of Nonlinear Oil Dampers With Uncertainty Using Critical Double Impulse
Frontiers in Built Environment
robust optimization
damper placement
critical double impulse
bi-linear oil damper
robustness function
uncertainty analysis
author_facet Kohei Fujita
Ryota Wataya
Izuru Takewaki
author_sort Kohei Fujita
title Robust Optimal Damper Placement of Nonlinear Oil Dampers With Uncertainty Using Critical Double Impulse
title_short Robust Optimal Damper Placement of Nonlinear Oil Dampers With Uncertainty Using Critical Double Impulse
title_full Robust Optimal Damper Placement of Nonlinear Oil Dampers With Uncertainty Using Critical Double Impulse
title_fullStr Robust Optimal Damper Placement of Nonlinear Oil Dampers With Uncertainty Using Critical Double Impulse
title_full_unstemmed Robust Optimal Damper Placement of Nonlinear Oil Dampers With Uncertainty Using Critical Double Impulse
title_sort robust optimal damper placement of nonlinear oil dampers with uncertainty using critical double impulse
publisher Frontiers Media S.A.
series Frontiers in Built Environment
issn 2297-3362
publishDate 2021-08-01
description A new robust method for optimal damper placement is presented for building structures under the critical double impulse. Oil dampers are treated here as representative supplemental dampers to control the seismic response of high-rise buildings. Such oil dampers usually obey a bi-linear force-velocity relation in controlling the maximum damping force through a relief mechanism to avoid the occurrence of excessive design forces in surrounding frames. The influence of uncertainty in characteristics of those bi-linear oil dampers on building structural safety is investigated. For the efficient evaluation of dynamic performance, the resonant critical double impulse is used as the base input instead of actual earthquake ground motions. Since the critical double impulse is determined to maximize the input energy to the objective building by changing the second impulse timing, uncertainties in input ground motions can be taken into account in a robust manner. To consider these various uncertainties, the robustness function based on the Info-Gap model is used in the robust optimization to assess structural performance variations caused by various uncertainties in the structural design phase. In this paper, a new innovative objective function in the robust optimal damper placement problem is proposed to enhance the robustness of structural performance under the variation of structural parameters by comparing the robustness function of the robust design with that of an ordinary optimal damper placement without considering uncertainties. Numerical examples of the robust optimal design of linear and bi-linear oil damper placements are shown for 10-story and 20-story planar building frame models. Structural performances of the robust optimal design to the conventional design earthquake ground motions are examined to investigate the validity of using the critical double impulse in the structural design under uncertainties.
topic robust optimization
damper placement
critical double impulse
bi-linear oil damper
robustness function
uncertainty analysis
url https://www.frontiersin.org/articles/10.3389/fbuil.2021.744973/full
work_keys_str_mv AT koheifujita robustoptimaldamperplacementofnonlinearoildamperswithuncertaintyusingcriticaldoubleimpulse
AT ryotawataya robustoptimaldamperplacementofnonlinearoildamperswithuncertaintyusingcriticaldoubleimpulse
AT izurutakewaki robustoptimaldamperplacementofnonlinearoildamperswithuncertaintyusingcriticaldoubleimpulse
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