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Truss structure damage identification using residual force vector and genetic algorithm

机译:桁架结构损害识别使用残余力载体和遗传算法

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摘要

In this paper, damage detection has been introduced as an optimization problem and a two-step method has been proposed that can detect the location and severity of damage in truss structures precisely and reduce the volume of computations considerably. In the first step, using the residual force vector concept, the suspected damaged members are detected which will result in a reduction in the number of variables and hence a decrease in the search space dimensions. In the second step, the precise location and severity of damage in the members are identified using the genetic algorithm and the results of the first step. Considering the reduced search space, the algorithm can find the optimal points (i.e. the solution for the damage detection problem) with less computation cost. In this step, the Efficient Correlation Based Index (ECBI), that considers the structure's first few frequencies in both damaged and healthy states, is used as the objective function and some examples have been provided to check the efficiency of the proposed method; results have shown that the method is innovatively capable of detecting damage in truss structures.
机译:在本文中,已经引入了损伤检测作为优化问题,提出了两步方法,可以精确地检测桁架结构损坏的位置和严重程度,并大大降低计算量。在第一步中,使用残余力矢量概念,检测疑似损坏构件,其将导致变量的数量减少,从而降低搜索空间尺寸。在第二步中,使用遗传算法和第一步的结果来识别成员损坏的精确位置和严重程度。考虑到降低的搜索空间,该算法可以找到最佳点(即损坏检测问题的解决方案),计算成本较少。在该步骤中,考虑结构在损坏和健康状态中的基于有效相关的索引(ECBI),用作目标函数,并提供了一些示例以检查所提出的方法的效率;结果表明,该方法具有创新性能够检测桁架结构损坏。

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