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An advanced numerical model of elastomeric seismic isolation bearings
Earthquake engineering & structural dynamics, 2014-10, Vol.43 (13), p.1955-1974
Kumar, Manish
Whittaker, Andrew S.
Constantinou, Michael C.
2014
Volltextzugriff (PDF)
Details
Autor(en) / Beteiligte
Kumar, Manish
Whittaker, Andrew S.
Constantinou, Michael C.
Titel
An advanced numerical model of elastomeric seismic isolation bearings
Ist Teil von
Earthquake engineering & structural dynamics, 2014-10, Vol.43 (13), p.1955-1974
Ort / Verlag
Chichester: Blackwell Publishing Ltd
Erscheinungsjahr
2014
Quelle
Access via Wiley Online Library
Beschreibungen/Notizen
SUMMARY The nuclear accident at Fukushima Daiichi in March 2011 has led the nuclear community to consider seismic isolation for new large light water and small modular reactors to withstand the effects of beyond design basis loadings, including extreme earthquakes. The United States Nuclear Regulatory Commission is sponsoring a research project that will quantify the response of low damping rubber (LDR) and lead rubber (LR) bearings under loadings associated with extreme earthquakes. Under design basis loadings, the response of an elastomeric bearing is not expected to deviate from well‐established numerical models, and bearings are not expected to experience net tension. However, under extended or beyond design basis shaking, elastomer shear strains may exceed 300% in regions of high seismic hazard, bearings may experience net tension, the compression and tension stiffness will be affected by isolator lateral displacement, and the properties of the lead core in LR bearings will degrade in the short‐term because of substantial energy dissipation. New mathematical models of LDR and LR bearings are presented for the analysis of base isolated structures under design and beyond design basis shaking, explicitly considering both the effects of lateral displacement and cyclic vertical and horizontal loading. These mathematical models extend the available formulations in shear and compression. Phenomenological models are presented to describe the behavior of elastomeric isolation bearings in tension, including the cavitation and post‐cavitation behavior. The elastic mechanical properties make use of the two‐spring model. Strength degradation of LR bearing under cyclic shear loading due to heating of lead core is incorporated. The bilinear area reduction method is used to include variation of critical buckling load capacity with lateral displacement. The numerical models are coded in OpenSees, and the results of numerical analysis are compared with test data. The effect of different parameters on the response is investigated through a series of analyses. Copyright © 2014 John Wiley & Sons, Ltd.
Sprache
Englisch
Identifikatoren
ISSN: 0098-8847
eISSN: 1096-9845
DOI: 10.1002/eqe.2431
Titel-ID: cdi_proquest_miscellaneous_1642287413
Format
–
Schlagworte
Bearings
,
cavitation
,
Design engineering
,
Displacement
,
Earth sciences
,
Earth, ocean, space
,
Earthquake engineering
,
Earthquakes, seismology
,
elastomeric bearing
,
Elastomers
,
Engineering and environment geology. Geothermics
,
Engineering geology
,
Exact sciences and technology
,
extreme loading
,
Internal geophysics
,
isolation
,
Mathematical models
,
nuclear power plants
,
Rubber
,
Seismic phenomena
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