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On the identification of the elastic properties of composites by ultrasonic guided waves and optimization algorithm

机译:超声波引导复合材料弹性性能的识别及优化算法

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This paper examines the potential of ultrasonic guided waves to identify the elastic properties of fiber-reinforced composite laminates widely used in light-weight structures. Due to variability in manufacturing processes, complexities involved in the constituent materials, or degradation in service, a non-destructive tool for the characterization of the composite's properties can be extremely useful. A common assumption is the necessity for multiple wave propagation directions to fully characterize the properties. This paper examines the potential for property characterization by a single wave propagation direction. It proposes a property inversion scheme based on matching phase velocity dispersion curves of relevant guided modes by means of a Simulated Annealing optimization algorithm and a Semi-Analytical Finite Element method to solve the forward problem. Proof-of-principle numerical studies are presented to demonstrate the potential of each selected wave mode to provide identification of several properties, including the lamina elastic constants and the laminate effective constants. It is shown that the complex stress and strain profiles generated by the waves, aided by the anisotropy of the composite, create interesting "coupling" effects that ultimately enable accurate identification of several elastic properties away from the wave propagation direction.
机译:本文研究了超声导波的潜力,以识别广泛用于轻型结构的纤维增强复合材料层压板的弹性性能。由于制造工艺的变化,组成材料涉及的复杂性或服务质量下降,用于表征复合材料性能的非破坏性工具可能非常有用。一个普遍的假设是,多个波传播方向必须完全表征其特性。本文研究了通过单波传播方向表征特性的潜力。通过模拟退火优化算法和半解析有限元方法,提出了一种基于匹配相关导模相速度色散曲线的特性反演方案,以解决前向问题。进行了原理验证的数值研究,以证明每种选定的波动模式潜在地提供几种特性的识别,包括层板弹性常数和层合板有效常数。结果表明,在复合材料的各向异性的帮助下,波浪产生的复杂应力和应变曲线产生了有趣的“耦合”效应,最终使人们能够准确地识别出远离波传播方向的几种弹性。

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