首页> 外文期刊>Engineering Structures >A versatile numerical model for the nonlinear analysis of squat-to-tall reinforced-concrete shear walls
【24h】

A versatile numerical model for the nonlinear analysis of squat-to-tall reinforced-concrete shear walls

机译:蹲高钢筋混凝土剪力墙非线性分析的多功能数值模型

获取原文
获取原文并翻译 | 示例

摘要

Reinforced concrete (RC) walls are extensively used to resist lateral forces in tall buildings as well as in the majority of medium to low-rise structures designed for protective purposes. In the framework of seismic performance-based design, where an adequate modeling of the lateral load versus lateral displacement relationship and a full understanding of the damage evolution are required, numerical models represent an effective tool to conduct nonlinear response analyses of such systems. For practical applications and for performing extensive nonlinear analyses, it would be desirable to have a robust yet simple numerical model that is capable of capturing the global and local characteristics of the response for different levels of damage. To this end, this paper presents a finite element-based model implemented in OpenSees [1] capable of simulating the in-plane nonlinear static and dynamic response of RC walls across a broad range of aspect ratios. The proposed model includes (i) the element technology, in which the state-of-the-art isoparametric elements are coupled with layered sections, and (ii) a novel plane-stress plastic-damage concrete material. A simple simulation-based method for determining the concrete material parameters is proposed. Model validation is conducted through a comprehensive comparison against experimental tests collected from the literature. Results show that the proposed numerical tool can be reliably used to simulate the nonlinear global and local response of RC walls spanning a broad range of aspect ratios (from 0.4 to 2.3). Moreover, model hysteresis damping is analytically analyzed to provide modelers with insight into the equivalent damping to employ when nonlinear and equivalent linear dynamic analyses are performed with the proposed model. Finally, an extensive parametric study comprising a total of 12,288 nonlinear simulations is developed to investigate the sensitivity of the numerically predicted response to changes in the concrete model parameters and gain insight into the factors that most affect the walls peak shear and dissipated energy.
机译:钢筋混凝土(RC)壁广泛用于抵抗高层建筑物中的横向力以及大多数培养基到用于保护性目的的低层结构。在基于地震性能的设计框架中,需要横向载荷与横向位移关系的充分建模和对损坏进化的完全理解,数值模型代表了一种进行这种系统的非线性响应分析的有效工具。对于实际应用和用于进行广泛的非线性分析,希望具有强大而简单的数值模型,该模型能够捕获不同损坏水平的响应的全局和局部特征。为此,本文介绍了在Opensees [1]中实现的基于有限元的模型,该模型能够模拟RC壁的面内非线性静态响应跨越广泛的纵横比。所提出的模型包括(i)元件技术,其中最先进的等偶像元件与分层部分连接,(ii)一种新型平面应力塑性损坏混凝土材料。提出了一种用于确定混凝土材料参数的简单仿真方法。通过与文献中收集的实验测试进行全面比较进行模型验证。结果表明,该拟议的数值工具可以可靠地用于模拟跨越跨越纵横比(0.4至2.3)的RC壁的非线性全球和局部响应。此外,模型分析了模型滞后阻尼,以便在用所提出的模型执行非线性和等效线性动态分析时,为使用洞察的模型。最后,开发了总共12,288个非线性模拟的广泛参数研究,以研究数值预测的响应对具体模型参数的变化的灵敏度,并深入了解最大影响墙壁峰值剪切和消散能量的因素。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号