首页> 外文期刊>工程与科学中的计算机建模(英文) >Real-Time Hybrid Simulation of Seismically Isolated Structures with Full-Scale Bearings and Large Computational Models
【24h】

Real-Time Hybrid Simulation of Seismically Isolated Structures with Full-Scale Bearings and Large Computational Models

机译:全尺寸轴承和大型计算模型的地震隔离结构的实时混合模拟

获取原文
获取原文并翻译 | 示例
       

摘要

Hybrid simulation can be a cost effective approach for dynamic testing of structural components at full scale while capturing the system level response through interactions with a numerical model.The dynamic response of a seismically isolated structure depends on the combined characteristics of the ground motion,bearings,and superstructure.Therefore,dynamic full-scale system level tests of isolated structures under realistic dynamic loading conditions are desirable towards a holistic validation of this earthquake protection strategy.Moreover,bearing properties and their ultimate behavior have been shown to be highly dependent on rate-of-loading and scale size effects,especially under extreme loading conditions.Few laboratory facilities can test full-scale seismic isolation bearings under prescribed displacement and/or loading protocols.The adaptation of a full-scale bearing test machine for the implementation of real-time hybrid simulation is presented here with a focus on the challenges encountered in attaining reliable simulation results for large scale dynamic tests.These advanced real-time hybrid simulations of large and complex hybrid models with several thousands of degrees of freedom are some of the first to use high performance parallel computing to rapidly execute the numerical analyses.Challenges in the experimental setup included measured forces contaminated by delay and other systematic control errors in applying desired displacements.Friction and inertial forces generated by the large-scale loading apparatus can affect the accuracy of measured force feedbacks.Reliable results from real-time hybrid simulation requires implementation of compensation algorithms and correction of these various sources of errors.Overall,this research program confirms that real-time hybrid simulation is a viable testing method to experimentally assess the behavior of full-scale isolators while capturing interactions with the numerical models of the superstructure to evaluate system level and in-structure response.
机译:混合模拟可以是以满量程进行动态测试结构部件的成本有效的方法,同时通过与数值模型的相互作用捕获系统级响应。地震隔离结构的动态响应取决于地面运动,轴承的组合特性,因此,在现实的动态负载条件下,朝着现实的动态装载条件下隔离结构的动态全尺度系统水平测试是为了实现这种地震保护策略的整体验证。罗伊弗,轴承性能及其最终行为已被证明是高度依赖的 - 装载和规模尺寸效应,尤其是在极端装载条件下。2006年实验室设施可以在规定的位移和/或装载方案下测试全尺寸的地震隔离轴承。适应全尺寸轴承测试机的实施这里展示了时间混合模拟,重点是挑战eS遇到了实现大规模动态测试的可靠仿真结果。这些高级和复杂的混合模型的高级实时混合模拟,具有几千多程度的自由度是首先使用高性能并行计算来快速执行数值分析实验设置中的挑战包括延迟污染的测量力和在施加所需的位移时的其他系统控制误差。由大规模加载设备产生的惯性力和惯性力可以影响测量力反馈的准确性。可以从实时混合的测量力反馈的准确性。模拟需要实施补偿算法和校正这些各种错误的校正。该研究程序确认实时混合模拟是一种可行的测试方法,用于通过实验评估满量程隔离器的行为,同时捕获与数值模型的交互评估的上层建筑系统级别和结构响应。

著录项

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