EFFECTS OF STRUCTURE HEIGHT ON SEISMIC DEMAND OF MOMENT-RESISTING REINFORCED CONCRETE FRAMES CONSIDERING SOIL-STRUCTURE INTERACTION

B. JavidSharifi, Sedigheh Gheisari
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Abstract

Forces and displacements induced in a building due to structural responses to earthquake excitation are called seismic demands which depend upon the input motion, structural characteristics, site effects and the interaction of structure with soil. Structural response of three laterally non-controlled moment-resisting reinforced concrete frame structures with three different soil conditions are have been investigated in this paper. The soil conditions include loose soil, medium soil and rigid ground. The soil-structure interaction of low-, mid- and high-rise frame structures with the above mentioned soil types was analysed by performing nonlinear response history analyses. A set of eleven earthquake motions was employed in the analyses and maximum structural seismic demands for the frame structures were calculated. It was found that pressure-independent relatively loose sandy soils are not very critical for low-rise structures. On the other hand, pressure-independent relatively loose sandy soils and pressure-independent medium sandy soils are highly critical for mid-rise and high-rise structures, respectively. Categorisation of the soils is performed based on the value ranges of a series of constitutive parameters. Further, fixity of the base is most effective in controlling storey displacements until approximately one-third of the structure height. Medium soil leads to highest maximum base shears in low-rise structures while fixed-base and medium cases, and fixed base state control the behaviours of mid-rise and high-rise structures, respectively.
考虑土-结构相互作用的结构高度对钢筋混凝土框架抗震需求的影响
由于结构对地震激励的反应而引起的建筑物内的力和位移称为地震需求,它取决于输入运动、结构特性、场地效应和结构与土壤的相互作用。本文研究了3种不同土体条件下3种侧向无控抗弯矩钢筋混凝土框架结构的结构响应。土壤条件包括松散土、中等土和刚性土。通过非线性响应历史分析,分析了低、中、高层框架结构在上述土型下的土-结构相互作用。在分析中采用了11次地震运动,并计算了框架结构的最大结构抗震需求。研究发现,压力无关的相对疏松砂质土对低层结构的影响不大。另一方面,压力无关的相对松散砂质土和压力无关的中等砂质土分别对中高层和高层结构至关重要。土壤的分类是根据一系列本构参数的取值范围进行的。此外,基础的固定在控制楼层位移方面是最有效的,直到大约三分之一的结构高度。中土对低层结构的最大基底剪切力影响最大,而中、固定地基和固定地基状态分别控制着中高层结构的剪切力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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