Modeling, analysis and seismic design of structures using energy dissipators SLB

Tecnia Pub Date : 2019-08-12 DOI:10.21754/tecnia.v29i2.713
L. Bozzo, Helbert Gonzales, Marcos Pantoja, Edinson Muñoz, Julio Ramírez
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引用次数: 3

Abstract

This paper initially describes aspects of the modeling of structures equipped with energy dissipators Shear Link Bozzo (SLB) and develops two iterative design procedures to select these devices. This methodology is applied to a precast 5-story reinforced concrete building. The SLB energy dissipation devices are initially stiff, but ductile with a range of yielding forces from 36 kN to 900 kN characterized by 52 + 52 standard devices. Moreover, these devices can be combined in parallel giving a very wide range of possibilities for selection and corresponding structural response. Therefore, to simplify its automatic selection, this article presents two procedures: (1) direct iteration and (2) inverse or fixed force iteration. Both procedures were implemented in an automatic application or “plugin” for the ETABS program that automates its selection for a specific structural system or architectural configuration of these elements. Using these devices, the energy introduced by an earthquake into the structure can be dissipated, protecting other structural elements that suffer damage. The SLB energy dissipation devices are affordable to get a significant performance improvement in the overall structural response. This work presents a five-story precast reinforced concrete building frame, called SLB Building, that provides 4 departments per level all with a diaphanous interior floor. The building is made up of 11 columns with a constant 40x40cm section and all its beams have hinges at the ends. This building was equipped with 120 small SLB devices showing its performance for the maximum earthquake of Peruvian seismic code without ductility reduction (R = 1) by means of nonlinear time history with ten seismic records compatible with the S1 soil spectrum. In this structure, all seismic energy dissipation was concentrated in these devices so there would be no structural damage. In addition, the levels of non-structural damage were controlled with initial stiffness of these devices since lateral displacements were reduced to levels below the Peruvian seismic code (or even immediate occupancy for devices greater than those provided in this example). At the same time, the levels of acceleration decrease in height to only 0.3g and the base shear coefficient is reduced from almost 1.2 to only 0.12-0.2 (this means an R factor between 6 and 10 without structural damage).
耗能体SLB结构的建模、分析与抗震设计
本文首先描述了配备耗能器的结构的建模方面,并开发了两个迭代设计程序来选择这些装置。该方法应用于一座预制的5层钢筋混凝土建筑。SLB耗能装置最初是刚性的,但具有延展性,其屈服力范围从36 kN到900 kN,具有52 + 52标准装置的特点。此外,这些装置可以并联组合,为选择和相应的结构响应提供了非常广泛的可能性。因此,为了简化其自动选择,本文提出了两种方法:(1)直接迭代和(2)逆或定力迭代。这两个过程都是在ETABS程序的自动应用程序或“插件”中实现的,该程序可以自动选择这些元素的特定结构系统或架构配置。使用这些装置,地震引入结构的能量可以消散,保护其他遭受破坏的结构部件。SLB耗能装置价格合理,在整体结构响应方面有显著的性能改善。这个作品展示了一个五层的预制钢筋混凝土建筑框架,称为SLB建筑,每层提供4个部门,所有部门都有透明的内部地板。该建筑由11根40 × 40厘米截面的柱子组成,所有的横梁末端都有铰链。该建筑配备了120个小型SLB装置,通过与S1土谱兼容的10个地震记录的非线性时程,显示其在秘鲁地震规范的最大地震中没有延性降低(R = 1)的性能。在这种结构中,所有的地震能量消耗都集中在这些装置上,因此不会造成结构损伤。此外,由于横向位移降低到秘鲁地震规范以下的水平(甚至对于大于本例中提供的设备的立即占用),因此这些设备的非结构损坏水平由这些设备的初始刚度控制。与此同时,高度的加速度水平降低到只有0.3g,基础剪切系数从几乎1.2降低到只有0.12-0.2(这意味着在没有结构损坏的情况下,R系数在6到10之间)。
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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