Optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects

Recently, several new optimum loading patterns have been proposed by researchers for fixed-base systems while their adequacy for soil-structure systems has not been evaluated yet. Through intensive dynamic analyses of multistory shear-building models with soil-structure interaction subjected to a gr...

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Main Authors: Ganjavi, B., Hao, Hong
Format: Journal Article
Published: John Wiley & Sons Ltd. 2013
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/22226
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author Ganjavi, B.
Hao, Hong
author_facet Ganjavi, B.
Hao, Hong
author_sort Ganjavi, B.
building Curtin Institutional Repository
collection Online Access
description Recently, several new optimum loading patterns have been proposed by researchers for fixed-base systems while their adequacy for soil-structure systems has not been evaluated yet. Through intensive dynamic analyses of multistory shear-building models with soil-structure interaction subjected to a group of 21 artificial earthquakes adjusted to soft soil design spectrum, the adequacy of these optimum patterns is investigated. It is concluded that using these patterns the structures generally achieve near optimum performance in some range of periods. However, their efficiency reduces as soil flexibility increases especially when soil-structure interaction effects are significant. In the present paper, using the uniform distribution of damage over the height of structures, as the criterion, an optimization algorithm for seismic design of elastic soil-structure systems is developed. The effects of fundamental period, number of stories, earthquake excitation, soil flexibility, building aspect ratio, damping ratio and damping model on optimum distribution pattern are investigated. On the basis of 30,240 optimum load patterns derived from numerical simulations and nonlinear statistical regression analyses, a new lateral load pattern for elastic soil-structure systems is proposed. It is a function of the fundamental period of the structure, soil flexibility and structural slenderness ratio. It is shown that the seismic performance of such a structure is superior to those designed by code-compliant or recently proposed patterns by researchers for fixed-base structures. Using the proposed load pattern in this study, the designed structures experience up to 40% less structural weight as compared with the code-compliant or optimum patterns developed based on fixed-base structures.
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publishDate 2013
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spelling curtin-20.500.11937-222262017-09-13T13:51:04Z Optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects Ganjavi, B. Hao, Hong Elastic behavior Seismic code Optimum strength distribution Uniform damage distribution Soil-structure interaction Recently, several new optimum loading patterns have been proposed by researchers for fixed-base systems while their adequacy for soil-structure systems has not been evaluated yet. Through intensive dynamic analyses of multistory shear-building models with soil-structure interaction subjected to a group of 21 artificial earthquakes adjusted to soft soil design spectrum, the adequacy of these optimum patterns is investigated. It is concluded that using these patterns the structures generally achieve near optimum performance in some range of periods. However, their efficiency reduces as soil flexibility increases especially when soil-structure interaction effects are significant. In the present paper, using the uniform distribution of damage over the height of structures, as the criterion, an optimization algorithm for seismic design of elastic soil-structure systems is developed. The effects of fundamental period, number of stories, earthquake excitation, soil flexibility, building aspect ratio, damping ratio and damping model on optimum distribution pattern are investigated. On the basis of 30,240 optimum load patterns derived from numerical simulations and nonlinear statistical regression analyses, a new lateral load pattern for elastic soil-structure systems is proposed. It is a function of the fundamental period of the structure, soil flexibility and structural slenderness ratio. It is shown that the seismic performance of such a structure is superior to those designed by code-compliant or recently proposed patterns by researchers for fixed-base structures. Using the proposed load pattern in this study, the designed structures experience up to 40% less structural weight as compared with the code-compliant or optimum patterns developed based on fixed-base structures. 2013 Journal Article http://hdl.handle.net/20.500.11937/22226 10.1002/eqe.2252 John Wiley & Sons Ltd. restricted
spellingShingle Elastic behavior
Seismic code
Optimum strength distribution
Uniform damage distribution
Soil-structure interaction
Ganjavi, B.
Hao, Hong
Optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects
title Optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects
title_full Optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects
title_fullStr Optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects
title_full_unstemmed Optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects
title_short Optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects
title_sort optimum lateral load pattern for seismic design of elastic shear-buildings incorporating soil-structure interaction effects
topic Elastic behavior
Seismic code
Optimum strength distribution
Uniform damage distribution
Soil-structure interaction
url http://hdl.handle.net/20.500.11937/22226