Near-Fault Earthquake Ground Motion and Seismic Isolation Design
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Date
2023
Authors
Mustafa O. Erdik
Bahadır Şadan
Cüneyt Tüzün
Mine Betul Demircioglu-Tumsa
Ömer Ülker
Ebru Harmandar
Journal Title
Journal ISSN
Volume Title
Publisher
Springer Science and Business Media Deutschland GmbH
Open Access Color
Green Open Access
No
OpenAIRE Downloads
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Publicly Funded
No
Abstract
Seismic isolation is one of the most reliable passive structural control techniques with adequately established standards for the earthquake protection of structures from earthquakes. However it has been shown that the seismic isolation systems may not function the best for the near-fault ground motions since in the proximity of a capable fault the ground motions are significantly affected by the rupture mechanism and may generate high demands on the isolation system and the structure. In fact several earthquake resistant design codes state that the seismically isolated structures located at near-fault sites should be designed by considering larger seismic demands than the demand on structures at far-field sites. When the fault ruptures in forward direction to the site most of the seismic energy arrives in coherent long-period ground velocity pulses. The ground-motion prediction equations (GMPEs) typically cannot account for such effects with limited distance metrics and lack adequate data at large magnitudes and near distances. For the reliable earthquake design of the isolated structure in near fault conditions that meets the performance objectives the 3D design basis ground motion(s) need to be appropriately assessed. Measures in the design of the isolation system such as modifications in the stiffness and damping characteristics as well as in the limitation of vertical effects are needed. The behavior of the base-isolated buildings under near-fault (NF) ground motions with fling-step and forward-directivity characteristics are investigated with a rational assessment of design-basis near-fault ground motion are investigated in a parametric format. The parametric study includes several variables including the structural system flexibility, number of stories, isolation system characteristic (yield) strength and the isolation periods related to the post-elastic stiffness. Furthermore the effect of additional damping by viscous dampers were tested for some selected cases. Important findings observed from the parametric performance results and the overall conclusions of the study are provided. © 2023 Elsevier B.V. All rights reserved.
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ORCID
Keywords
Base-isolated Buildings, Fling-step, Forward-directivity, Near-fault Ground Motions, Pulse Period, Equations Of Motion, Faulting, Motion Estimation, Seismic Design, Stiffness, Structural Dynamics, Base-isolated Building, Fling-step, Forward Directivity, Isolated Structures, Isolation Systems, Near Fault Ground Motion, Near-fault, Pulse Period, Seismic Isolation, Damping, Equations of motion, Faulting, Motion estimation, Seismic design, Stiffness, Structural dynamics, Base-isolated building, Fling-step, Forward directivity, Isolated structures, Isolation systems, Near fault ground motion, Near-fault, Pulse period, Seismic isolation, Damping, Near-Fault Ground Motions, Pulse Period, Fling-step, Forward-directivity, Base-Isolated Buildings, Slip, Inclusion, Directivity, Near-fault ground motions, Pgv, Pulse period, Base-isolated buildings, Pulses, Fling-step, Forward-directivity, Components, Displacement spectra, Model
Fields of Science
Citation
WoS Q
Scopus Q

OpenCitations Citation Count
3
Source
17th World Conference on Seismic Isolation WCSI 2022
Volume
309
Issue
Start Page
117
End Page
152
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Citations
Scopus : 7
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Mendeley Readers : 7
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