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A Two-stage Damage Detection Approach Based On Subset Selection And Genetic Algorithms

机译:基于子集选择和遗传算法的两阶段损伤检测方法

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摘要

A two-stage damage detection method is proposed and demonstrated for structural health monitoring. In the first stage, the subset selection method is applied for the identification of the multiple damage locations. In the second stage, the damage severities of the identified damaged elements are determined applying SSGA to solve the optimization problem. In this method, the sensitivities of residual force vectors with respect to damage parameters are employed for the subset selection process. This approach is particularly efficient in detecting multiple damage locations. The SEREP is applied as needed to expand the identified mode shapes while using a limited number of sensors. Uncertainties in the stiffness of the elements are also considered as a source of modeling errors to investigate their effects on the performance of the proposed method in detecting damage in real-life structures. Through a series of illustrative examples, the proposed two-stage damage detection method is demonstrated to be a reliable tool for identifying and quantifying multiple damage locations within diverse structural systems.
机译:提出了一种用于结构健康监测的两阶段损伤检测方法。在第一阶段,将子集选择方法应用于多个损坏位置的识别。在第二阶段,使用SSGA确定所识别出的损坏元素的损坏严重程度,以解决优化问题。在该方法中,将残余力矢量相对于损伤参数的敏感性用于子集选择过程。这种方法在检测多个损坏位置时特别有效。根据需要应用SEREP,以在使用有限数量的传感器的同时扩展已识别的模式形状。单元刚度的不确定性也被认为是建模误差的来源,以研究其对所提出的方法在实际结构中检测损伤的性能的影响。通过一系列说明性示例,所提出的两阶段损伤检测方法被证明是一种可靠的工具,可用于识别和量化不同结构系统中的多个损伤位置。

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