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GA-based optimum design of a shape memory alloy device for seismic response mitigation

机译:基于遗传算法的形状记忆合金装置的抗震优化设计

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摘要

Damping systems discussed in this work are optimized so that a three-story steel frame structure and its shape memory alloy (SMA) bracing system minimize response metrics due to a custom-tailored earthquake excitation. Multiple-objective numerical optimization that simultaneously minimizes displacements and accelerations of the structure is carried out with a genetic algorithm (GA) in order to optimize SMA bracing elements within the structure. After design of an optimal SMA damping system is complete, full-scale experimental shake table tests are conducted on a large-scale steel frame that is equipped with the optimal SMA devices. A fuzzy inference system is developed from data collected during the testing to simulate the dynamic material response of the SMA bracing subcomponents. Finally, nonlinear analyses of a three-story braced frame are carried out to evaluate the performance of comparable SMA and commonly used steel braces under dynamic loading conditions and to assess the effectiveness of GA-optimized SMA bracing design as compared to alternative designs of SMA braces. It is shown that peak displacement of a structure can be reduced without causing significant acceleration response amplification through a judicious selection of physical characteristics of the SMA devices. Also, SMA devices provide a recentering mechanism for the structure to return to its original position after a seismic event.
机译:对本文中讨论的阻尼系统进行了优化,以使三层钢框架结构及其形状记忆合金(SMA)支撑系统可将因定制地震激励而产生的响应指标降至最低。为了优化结构中的SMA支撑元件,使用遗传算法(GA)进行了同时使结构的位移和加速度最小的多目标数值优化。完成最佳SMA阻尼系统的设计后,将在配备最佳SMA设备的大型钢框架上进行全面的实验振动台测试。根据测试过程中收集的数据开发了模糊推理系统,以模拟SMA支撑子组件的动态材料响应。最后,对三层支撑框架进行非线性分析,以评估可比的SMA和常用钢制支撑在动态载荷条件下的性能,并评估与SMA支撑的替代设计相比,GA优化的SMA支撑设计的有效性。结果表明,通过明智地选择SMA器件的物理特性,可以减少结构的峰值位移,而不会引起明显的加速响应放大。而且,SMA设备为地震事件后结构返回到其原始位置提供了一种定心机制。

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