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Genetic algorithm based reconstruction of the elastic moduli of orthotropic plates using an ultrasonic guided wave single-transmitter-multiple-receiver SHM array

机译:基于遗传算法的超声导波单发多收SHM阵列正交各向异性板弹性模量的重构

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The reconstruction of all nine unknown elastic moduli of orthotropic plate structures has been achieved using a single-transmitter-multiple-receiver (STMR) compact structural health monitoring (SHM) array. This method uses the velocity measurement of the fundamental guided Lamb wave modes (S-0 and A(0)), generated from a central transmitter, and received by a sparse array of receivers that encircle the transmitter. The measured velocities are then used in an inversion algorithm based on genetic algorithms. A prototype compact STMR array was developed and used in the measurement. Simulated data were used to demonstrate the feasibility of the technique. Experiments were conducted on 3.15 mm graphite-epoxy composite plate using a PZT based STMR array as well as laser vibrometer based displacement measurement. Experimental Lamb wave velocity data were used to validate the present technique. This technique finds application in the areas of material characterization and SHM of anisotropic plate-like structures used in aerospace and automobile components made using fiber reinforced composites.
机译:正交各向异性板结构的所有九个未知弹性模量的重建已使用单发射器-多接收器(STMR)紧凑结构健康监测(SHM)阵列实现。此方法使用从中央发射器生成并由环绕发射器的稀疏接收器阵列接收的基本引导的Lamb波模式(S-0和A(0))的速度测量。然后将测得的速度用于基于遗传算法的反演算法中。开发了原型紧凑型STMR阵列并将其用于测量。仿真数据用于证明该技术的可行性。使用基于PZT的STMR阵列以及基于激光振动计的位移测量,在3.15毫米石墨-环氧树脂复合板上进行了实验。实验的兰姆波速度数据被用来验证本技术。该技术在用于航空航天和使用纤维增强复合材料制造的汽车零部件的各向异性板状结构的材料表征和SHM领域中得到了应用。

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