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首页> 外文期刊>Journal of structural engineering >Substructure Modeling and Loading-Control Techniques for the Test of a Full-Scale Spatial RC Frame with Buckling-Restrained Braces Subjected to Bidirectional Loading
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Substructure Modeling and Loading-Control Techniques for the Test of a Full-Scale Spatial RC Frame with Buckling-Restrained Braces Subjected to Bidirectional Loading

机译:具有经过双向载荷的屈曲限制围绕的全尺寸空间RC帧测试的子结构建模和加载控制技术

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To investigate the performance of reinforced-concrete frames with buckling restrained braces (RCF-BRB) subjected to bidirectional earthquakes, a full-scale two-story RCF-BRB was tested using substructured pseudodynamic (PsD), quasistatic, and pushover techniques. This paper focuses on the structural modeling for the substructured PsD tests, and the control and measurement issues of the bidirectional loading system. To make a credible reproduction of the structural response using substructured PsD technique, an overlap modeling technique together with tuning the mass of the lamped-mass model and stiffness of the numerical substructure was employed to reduce errors caused by the incomplete boundary condition. The outer-loop control method based on Newton's iteration method was introduced for the loading system, with the data from external displacement sensors as the feedback to avoid errors caused by possible gaps in the connection parts of the loading system. The redundancy issue, caused by the actuators outnumbering the degrees of freedom of the floor to be controlled, is addressed with a force-displacement mixed control technique. The three of four actuators were controlled in displacement mode, whereas the redundant one was in force mode. The force command to the redundant actuator was determined with the optimization criteria to minimize the loads relative to the capacities of the actuators. The working range of the displacement sensors is investigated using numerical and geometric approaches. Failure examples from numerical simulation and experiment were shown to emphasize the importance of proper arrangement of displacement sensors. A rearrangement of the displacement sensors was proposed for the pushover test to enlarge the working range. Time-history results of the prototype structure using the calibrated finite-element model show that the PsD substructure test results could represent seismic responses of the prototype structure. The measured mass-center displacements accurately tracked the target displacements throughout the test, indicating the effectiveness of the loading control and measuring system.
机译:为了探讨与双向地震进行双向地震的屈曲抑制的括号(RCF-BRB)的增强混凝土框架的性能,使用子结构化假存性(PSD),Quasistatic和Pushover技术来测试全规模的两层RCF-BRB。本文重点介绍了子结构PSD测试的结构建模,以及双向装载系统的控制和测量问题。为了使用子结构PSD技术进行结构响应的可信再现,采用与调节灯质量模型的质量和数值子结构的灯泡质量和刚度的重叠建模技术,以减少由不完全边界条件引起的误差。引入了基于牛顿迭代方法的外环控制方法,用于加载系统,通过外部位移传感器的数据作为反馈,以避免在装载系统的连接部分中可能间隙引起的错误。由截止值的判断器引起的冗余问题,从而通过力 - 位移混合控制技术解决了待控制的地板的自由度。四种致动器中的三个在位移模式下控制,而冗余的致动力模式是强行模式。利用优化标准确定对冗余致动器的力命令,以最小化相对于致动器的容量的负载。使用数值和几何方法研究位移传感器的工作范围。从数值模拟和实验中的失败示例显示出强调位移传感器适当布置的重要性。提出了位移传感器的重新排列,用于推动测试以扩大工作范围。使用校准有限元模型的原型结构的时间历史结果表明,PSD子结构测试结果可能代表原型结构的地震响应。测量的质量中心位移在整个测试中精确地跟踪目标位移,表明装载控制和测量系统的有效性。

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