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The impact of solid-fluid interaction on transient stress wave propagation due to Acoustic Emissions in multi-layer plate structures

机译:固液相互作用对多层板结构中声发射引起的瞬态应力波传播的影响

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In this work the effect of a solid-fluid interaction on stress wave propagation within a composite over-wrapped pressure vessel (COPV) was investigated. A modeling approach capable of adequately capturing the multi-physics nature of the solid-fluid interaction is presented, and then validated through comparison to experimental waveforms and time-frequency distributions. With a validated modeling approach, a numerical study on stress wave propagation in COPV structures was undertaken. It was found that the compressibility of the pressurizing media used during the pressure testing of COPVs has an effect on the leakage of the propagating Lamb modes, as well as alternative direct paths that may propagate within the fluid. Results regarding the effects of the most common microstructural deformation mechanisms that occur in composite materials on the detected Lamb modes, as well as on the direct fluid path arrival are presented. Finally, the impact of source depth on the detected Lamb modes and the direct fluid path arrival was investigated. It was found that information gleaned from the direct fluid path arrival may have the potential for aiding Modal Acoustic Emission practices in source mechanism identification, determination of source orientation, as well as source depth estimation.
机译:在这项工作中,研究了固-液相互作用对应力波在复合包裹式压力容器(COPV)中传播的影响。提出了一种能够充分捕获固液相互作用的多物理性质的建模方法,然后通过与实验波形和时频分布的比较来进行验证。使用经过验证的建模方法,对COPV结构中应力波的传播进行了数值研究。已经发现,在COPV的压力测试过程中使用的加压介质的可压缩性会影响传播的Lamb模式的泄漏以及可能在流体中传播的替代直接路径。给出了有关复合材料中最常见的微观结构变形机制对检测到的兰姆模以及直接流体路径到达的影响的结果。最后,研究了源深度对检测到的兰姆模式和直接流体路径到达的影响。已经发现,从直接流体路径到达收集的信息可能在辅助声源机构识别,确定声源方向以及声源深度估计方面有助于模态声发射实践。

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