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Effective live load mass for storage buildings on friction-pendulum isolators

机译:摩擦摆隔离器上的储物建筑有效的活载物质

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This paper presents the results from finite element models of based-isolated storage buildings subjected to ground motion excitation and supporting rigid blocks with the possibility to slide. Main components of the models were first compared and calibrated with the results from numerical solutions, finite element software, and shake table tests. The successfully verified finite element models were then used to assess ASCE 7-16 design provisions for the treatment of storage loads as seismic weight in base-isolated structures. The analyses included multi-story shear buildings of different heights and three-dimensional buildings of three-stories with both regular and irregular plans under combined horizontal and vertical ground excitation. Alternative low and high friction between the rigid blocks (representing the storage live load) and the floor deck were evaluated in the analyses as well as the effect of light versus heavy storage live loads. Ground excitation consisted of 100 records, covering scenarios that range from low to high seismic risk. The combination of cases included in the parametric study led to thousands of nonlinear time history analyses. Selected engineering design parameters (EDP) to conduct the evaluation consisted of isolator deformation and maximum force demands in the lateral load resting system. Calculated EDPs from the detailed models (accounting for inelastic response of the lateral load resisting system coupled with potential sliding of rigid blocks) were compared with calculated EDPs from simplified models with no blocks but having additional floor mass equal to 25% of the design live load. The latter models represented analysis conditions that ASCE 7-16 minimum provisions would allow in consulting practice. This study demonstrates that using the Standards minimum provision can lead to: i) significant underestimations of the deformation demand and thus unconservative designs of base isolators; ii) significant underestimations of design forces, and consequently, improper design of the lateral load resisting elements. In order to address these issues, a simple expression recently developed by the authors to estimate the portion of the design live load as seismic weight was also evaluated. It is shown that using the portion of the live load given by this equation in the simplified models with no blocks but having additional floor mass produce very similar EDPs as those obtained from the detailed models with sliding blocks and thus representing a significant improvement over the existing ASCE 7-16 minimum provisions when applied to base-isolated storage structures.
机译:本文提出了基于基于储存建筑的有限元模型的结果,该储物建筑物经过地面运动激励和支撑刚性块的可能性载玻片。首先将模型的主要组成部分与数值解决方案,有限元件软件和摇动台测试的结果进行比较和校准。然后,使用成功验证的有限元模型来评估asce 7-16用于治疗储存载荷的设计规定,作为碱基隔离结构的地震重量。分析包括三层不同高度和三维建筑的多层剪切建筑,其中包括常规和不规则的计划,包括横向和垂直地面激励。在分析中评估刚性块(代表存储活载)和地板甲板之间的替代的低和高摩擦,以及光与重储存活载的效果。地面励磁包括100条记录,涵盖从低到高地震风险的范围的场景。参数研究中包含的情况的组合导致数千个非线性时间历史分析。选择的工程设计参数(EDP)进行评估包括隔离器变形和横向载荷系统中的最大力需求。将从详细模型计算的EDP(与刚性块电位耦合的横向负载系统的非弹性响应)进行比较,从简化模型与没有块的简化模型进行了比较,但具有额外的地板质量等于设计活负载的25% 。后者型号代表了分析条件,即asce 7-16最低规定将允许咨询练习。本研究表明,使用标准的最低规定可以导致:i)显着低估了变形需求,从而有意义的基础隔离器的设计; ii)对设计力的显着低估,因此,横向载荷元件的设计不当。为了解决这些问题,还评估了作者最近开发的简单表达式来估计设计活载的一部分作为地震重量。结果表明,在没有块的简化模型中使用这种等式的现场负荷部分,但具有额外的地板块产生非常相似的EDP,因为从具有滑动块的详细模型获得的那些,因此表示对现有的显着改进ASCE 7-16应用于碱基隔离储存结构时的最低规定。

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