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Optimal sensor placement for structural parameter identification

机译:用于结构参数识别的最佳传感器放置

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摘要

The identification of model material parameters is often required when assessing existing structures, in damage analysis and structural health monitoring. A typical procedure considers a set of experimental data for a given problem and the use of a numerical or analytical model for the problem description, with the aim of finding the material characteristics which give a model response as close as possible to the experimental outcomes. Since experimental results are usually affected by errors and limited in number, it is important to specify sensor position(s) to obtain the most informative data. This work proposes a novel method for optimal sensor placement based on the definition of the representativeness of the data with respect to the global displacement field. The method employs an optimisation procedure based on Genetic Algorithms and allows for the assessment of any sensor layout independently from the actual inverse problem solution. Two numerical applications are presented, which show that the representativeness of the data is connected to the error in the inverse analysis solution. These also confirm that the proposed approach, where different practical constraints can be added to the optimisation procedure, can be effective in decreasing the instability of the parameter identification process.
机译:在评估现有结构,损坏分析和结构健康状况监测时,通常需要确定模型材料参数。典型的过程会考虑给定问题的一组实验数据,并使用数字或分析模型来描述问题,目的是找到能够使模型响应尽可能接近实验结果的材料特性。由于实验结果通常受误差影响且数量有限,因此指定传感器位置以获得最有用的数据非常重要。这项工作基于数据相对于全局位移场的代表性定义,提出了一种用于最佳传感器放置的新颖方法。该方法采用基于遗传算法的优化程序,并且可以独立于实际的反问题解决方案来评估任何传感器布局。提出了两个数值应用程序,它们表明数据的代表性与逆分析解决方案中的误差有关。这些也证实了所提出的方法,其中可以向优化过程中添加不同的实际约束,可以有效地减少参数识别过程的不稳定性。

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