Robustness of multi-mode control using tuned mass dampers for seismically excited structures

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Deepika Gill
  • Said Elias
  • Andreas Steinbrecher
  • Christian Schröder
  • Vasant Matsagar

Externe Organisationen

  • Indian Institute of Technology Delhi (IITD)
  • Technische Universität Berlin
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Seiten (von - bis)5579-5603
Seitenumfang25
FachzeitschriftBulletin of earthquake engineering
Jahrgang15
Ausgabenummer12
PublikationsstatusVeröffentlicht - 1 Dez. 2017
Extern publiziertJa

Abstract

Robustness in multi-mode control of structures using tuned mass dampers (TMDs) is presented under seismic excitations. The robustness of the distributed multiple TMDs, i.e. d-MTMDs is compared with single TMD (STMD) and with multiple TMDs all installed at the top of the building (MTMDs-all.top). A 20-storey steel benchmark building subjected to earthquake ground motion is modeled, wherein stiffness and damping are considered with uncertainty in order to investigate the robustness of the STMD, MTMDs-all.top, and d-MTMDs. The d-MTMDs are distributed along the height of the building according to the mode shapes of the controlled and uncontrolled building. Monte-Carlo simulation is used to generate the uncertain stiffness and damping matrices of the 20-storey benchmark building. Parameters of the STMD, MTMDs-all.top, and d-MTMDs are optimized for each set of structural stiffness and damping matrices, and the probability distribution of the objective function is evaluated. The optimized parameters (mass ratio and damping ratio) are selected corresponding to the robust interval of the objective function calculated using the probability distribution. The results show that d-MTMDs perform satisfactorily even in the presence of the considered uncertainties and their performance is superior to that of the STMD and MTMDs-all.top in seismic response control of the structures.

ASJC Scopus Sachgebiete

Zitieren

Robustness of multi-mode control using tuned mass dampers for seismically excited structures. / Gill, Deepika; Elias, Said; Steinbrecher, Andreas et al.
in: Bulletin of earthquake engineering, Jahrgang 15, Nr. 12, 01.12.2017, S. 5579-5603.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Gill D, Elias S, Steinbrecher A, Schröder C, Matsagar V. Robustness of multi-mode control using tuned mass dampers for seismically excited structures. Bulletin of earthquake engineering. 2017 Dez 1;15(12):5579-5603. doi: 10.1007/s10518-017-0187-6
Gill, Deepika ; Elias, Said ; Steinbrecher, Andreas et al. / Robustness of multi-mode control using tuned mass dampers for seismically excited structures. in: Bulletin of earthquake engineering. 2017 ; Jahrgang 15, Nr. 12. S. 5579-5603.
Download
@article{b3cbc555f2364a1297efe2d5e9efc07e,
title = "Robustness of multi-mode control using tuned mass dampers for seismically excited structures",
abstract = "Robustness in multi-mode control of structures using tuned mass dampers (TMDs) is presented under seismic excitations. The robustness of the distributed multiple TMDs, i.e. d-MTMDs is compared with single TMD (STMD) and with multiple TMDs all installed at the top of the building (MTMDs-all.top). A 20-storey steel benchmark building subjected to earthquake ground motion is modeled, wherein stiffness and damping are considered with uncertainty in order to investigate the robustness of the STMD, MTMDs-all.top, and d-MTMDs. The d-MTMDs are distributed along the height of the building according to the mode shapes of the controlled and uncontrolled building. Monte-Carlo simulation is used to generate the uncertain stiffness and damping matrices of the 20-storey benchmark building. Parameters of the STMD, MTMDs-all.top, and d-MTMDs are optimized for each set of structural stiffness and damping matrices, and the probability distribution of the objective function is evaluated. The optimized parameters (mass ratio and damping ratio) are selected corresponding to the robust interval of the objective function calculated using the probability distribution. The results show that d-MTMDs perform satisfactorily even in the presence of the considered uncertainties and their performance is superior to that of the STMD and MTMDs-all.top in seismic response control of the structures.",
keywords = "Benchmark building, d-MTMDs, Monte-Carlo simulation, Robust optimum design, Uncertainty",
author = "Deepika Gill and Said Elias and Andreas Steinbrecher and Christian Schr{\"o}der and Vasant Matsagar",
note = "Funding information: Acknowledgements The authors thankfully acknowledge the constructive comments given by the anonymous reviewers to improve overall quality of the paper. The financial assistance provided by the German Academic Exchange Service (DAAD) to the first author through {\textquoteleft}{\textquoteleft}IIT Master Sandwich Scholarships{\textquoteright}{\textquoteright} is also gratefully acknowledged.",
year = "2017",
month = dec,
day = "1",
doi = "10.1007/s10518-017-0187-6",
language = "English",
volume = "15",
pages = "5579--5603",
journal = "Bulletin of earthquake engineering",
issn = "1570-761X",
publisher = "Springer Netherlands",
number = "12",

}

Download

TY - JOUR

T1 - Robustness of multi-mode control using tuned mass dampers for seismically excited structures

AU - Gill, Deepika

AU - Elias, Said

AU - Steinbrecher, Andreas

AU - Schröder, Christian

AU - Matsagar, Vasant

N1 - Funding information: Acknowledgements The authors thankfully acknowledge the constructive comments given by the anonymous reviewers to improve overall quality of the paper. The financial assistance provided by the German Academic Exchange Service (DAAD) to the first author through ‘‘IIT Master Sandwich Scholarships’’ is also gratefully acknowledged.

PY - 2017/12/1

Y1 - 2017/12/1

N2 - Robustness in multi-mode control of structures using tuned mass dampers (TMDs) is presented under seismic excitations. The robustness of the distributed multiple TMDs, i.e. d-MTMDs is compared with single TMD (STMD) and with multiple TMDs all installed at the top of the building (MTMDs-all.top). A 20-storey steel benchmark building subjected to earthquake ground motion is modeled, wherein stiffness and damping are considered with uncertainty in order to investigate the robustness of the STMD, MTMDs-all.top, and d-MTMDs. The d-MTMDs are distributed along the height of the building according to the mode shapes of the controlled and uncontrolled building. Monte-Carlo simulation is used to generate the uncertain stiffness and damping matrices of the 20-storey benchmark building. Parameters of the STMD, MTMDs-all.top, and d-MTMDs are optimized for each set of structural stiffness and damping matrices, and the probability distribution of the objective function is evaluated. The optimized parameters (mass ratio and damping ratio) are selected corresponding to the robust interval of the objective function calculated using the probability distribution. The results show that d-MTMDs perform satisfactorily even in the presence of the considered uncertainties and their performance is superior to that of the STMD and MTMDs-all.top in seismic response control of the structures.

AB - Robustness in multi-mode control of structures using tuned mass dampers (TMDs) is presented under seismic excitations. The robustness of the distributed multiple TMDs, i.e. d-MTMDs is compared with single TMD (STMD) and with multiple TMDs all installed at the top of the building (MTMDs-all.top). A 20-storey steel benchmark building subjected to earthquake ground motion is modeled, wherein stiffness and damping are considered with uncertainty in order to investigate the robustness of the STMD, MTMDs-all.top, and d-MTMDs. The d-MTMDs are distributed along the height of the building according to the mode shapes of the controlled and uncontrolled building. Monte-Carlo simulation is used to generate the uncertain stiffness and damping matrices of the 20-storey benchmark building. Parameters of the STMD, MTMDs-all.top, and d-MTMDs are optimized for each set of structural stiffness and damping matrices, and the probability distribution of the objective function is evaluated. The optimized parameters (mass ratio and damping ratio) are selected corresponding to the robust interval of the objective function calculated using the probability distribution. The results show that d-MTMDs perform satisfactorily even in the presence of the considered uncertainties and their performance is superior to that of the STMD and MTMDs-all.top in seismic response control of the structures.

KW - Benchmark building

KW - d-MTMDs

KW - Monte-Carlo simulation

KW - Robust optimum design

KW - Uncertainty

UR - http://www.scopus.com/inward/record.url?scp=85021789271&partnerID=8YFLogxK

U2 - 10.1007/s10518-017-0187-6

DO - 10.1007/s10518-017-0187-6

M3 - Article

AN - SCOPUS:85021789271

VL - 15

SP - 5579

EP - 5603

JO - Bulletin of earthquake engineering

JF - Bulletin of earthquake engineering

SN - 1570-761X

IS - 12

ER -

Von denselben Autoren