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Structural Shape Estimation by Mode Shapes Using Fiber Bragg Grating Sensors: A Genetic Algorithm Approach

机译:采用光纤布拉格光栅传感器模式形状的结构形状估计:遗传算法方法

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摘要

Structural shape estimation is of great interest in many engineering fields including aerospace and civil engineering. During operation, however, the monitoring of structural displacements is often difficult. This article discusses structural shape estimation using a minimal number of fiber Bragg grating sensors. A strain to displacement transformation matrix is derived using mode shapes, to estimate the global displacement of a structure from measured discrete strain data. The number of sensors and sensor layout for the shape estimation is optimized using genetic algorithm. Static and dynamic displacement experiments are conducted on an aluminum plate to verify the algorithm. The deformation during static experiments is measured at nine different locations and estimation error was less than 0.5%. The deformation during dynamic excitation is measured at one selected location using a noncontact laser sensor. The shape estimation quality is better for resonance frequencies compared to off-resonance frequencies. The results show that the estimated displacements match well with those measured displacements.
机译:结构形状估计对包括航空航天和土木工程在内的许多工程领域具有很大的兴趣。然而,在操作期间,对结构位移的监测通常很困难。本文讨论了使用最小数量的光纤布拉格光栅传感器进行结构形状估计。使用模式形状导出对位移变换矩阵的应变,以估计来自测量的离散应变数据的结构的全局位移。使用遗传算法优化了形状估计的传感器数量和传感器布局。静态和动态位移实验在铝板上进行以验证算法。在九个不同位置测量静态实验期间的变形,估计误差小于0.5%。使用非接触激光传感器在一个选定位置处测量动态激励期间的变形。与偏移频率相比,形状估计质量更好地谐振频率。结果表明,估计的位移与那些测量的位移相匹配。

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