Optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motions

Seismic response of five-story frame structure supported by lead-rubber bearings isolation system is investigated subjected to near-fault ground motions. The main structure is modeled as a simple linear multi-degrees-of-freedom vibration system with lumped masses, excited by near-fault ground motion...

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Main Author: Qiang Rong
Format: Article
Language:English
Published: SAGE Publishing 2020-03-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/1461348419845829
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spelling doaj-0eeef0e978ae4373bcee929f036978702020-11-25T02:50:30ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462020-03-013910.1177/1461348419845829Optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motionsQiang RongSeismic response of five-story frame structure supported by lead-rubber bearings isolation system is investigated subjected to near-fault ground motions. The main structure is modeled as a simple linear multi-degrees-of-freedom vibration system with lumped masses, excited by near-fault ground motions in the horizontal direction. The variation curves of peak top floor acceleration and peak bearing displacement of isolated building are plotted under different yield shear coefficient. The objective function selected for optimality is to maximize the seismic energy dissipated by the lead-rubber bearings. The main constraint conditions selected for optimality are the minimization of both peak bearing displacement and peak top floor acceleration. Optimum parameters of lead-rubber bearing isolation system are investigated and found that optimum yield shear coefficient of lead-rubber bearings is found to be in the range of 0.10–0.14 under near-fault ground motions. Optimum yield shear coefficient decreases with the increase of second isolation period. Optimum yield shear coefficient of lead-rubber bearings with higher yield displacement is larger than that of lead-rubber bearings with low yield displacement. Optimum ratio of pre-yield stiffness to post-yield stiffness of lead-rubber bearings is found to be in the range of 16–35. Optimum stiffness ratio increases proportionally with the decrease of yield displacement. Optimum stiffness ratio increases slightly with the increase of yield shear coefficient. Excluding the effect of pre-yield stiffness, the optimum second isolation period is recommended to be in the range of 4–6 s.https://doi.org/10.1177/1461348419845829
collection DOAJ
language English
format Article
sources DOAJ
author Qiang Rong
spellingShingle Qiang Rong
Optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motions
Journal of Low Frequency Noise, Vibration and Active Control
author_facet Qiang Rong
author_sort Qiang Rong
title Optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motions
title_short Optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motions
title_full Optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motions
title_fullStr Optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motions
title_full_unstemmed Optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motions
title_sort optimum parameters of a five-story building supported by lead-rubber bearings under near-fault ground motions
publisher SAGE Publishing
series Journal of Low Frequency Noise, Vibration and Active Control
issn 1461-3484
2048-4046
publishDate 2020-03-01
description Seismic response of five-story frame structure supported by lead-rubber bearings isolation system is investigated subjected to near-fault ground motions. The main structure is modeled as a simple linear multi-degrees-of-freedom vibration system with lumped masses, excited by near-fault ground motions in the horizontal direction. The variation curves of peak top floor acceleration and peak bearing displacement of isolated building are plotted under different yield shear coefficient. The objective function selected for optimality is to maximize the seismic energy dissipated by the lead-rubber bearings. The main constraint conditions selected for optimality are the minimization of both peak bearing displacement and peak top floor acceleration. Optimum parameters of lead-rubber bearing isolation system are investigated and found that optimum yield shear coefficient of lead-rubber bearings is found to be in the range of 0.10–0.14 under near-fault ground motions. Optimum yield shear coefficient decreases with the increase of second isolation period. Optimum yield shear coefficient of lead-rubber bearings with higher yield displacement is larger than that of lead-rubber bearings with low yield displacement. Optimum ratio of pre-yield stiffness to post-yield stiffness of lead-rubber bearings is found to be in the range of 16–35. Optimum stiffness ratio increases proportionally with the decrease of yield displacement. Optimum stiffness ratio increases slightly with the increase of yield shear coefficient. Excluding the effect of pre-yield stiffness, the optimum second isolation period is recommended to be in the range of 4–6 s.
url https://doi.org/10.1177/1461348419845829
work_keys_str_mv AT qiangrong optimumparametersofafivestorybuildingsupportedbyleadrubberbearingsundernearfaultgroundmotions
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