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Specimen representation on the prediction of artificial test lightning plasma, resulting specimen loading and subsequent composite material damage

机译:关于人工试验雷电等离子体预测的标本表示,产生样品负载和随后的复合材料损伤

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摘要

Preceding work has established that artificial test lightning plasma and composite test specimen damage can be modelled. However, no work has studied the impact of specimen representation in the modelling of the plasma and the resulting impact on specimen composite damage. Herein four distinct specimen designs have been modelled, with a magnetohydrodynamic FE multiphysics model employed to simulate the plasma and a FE thermal-electric modelling approach used to predict composite material damage. For the test arrangements modelled herein it has been found that specimen representation has limited impact on plasma global structure, even with significant change in specimen properties (e.g. from copper to epoxy). However, noteworthy variation in the local specimen surface loading is witnessed with specimen property change (e.g. epoxy to carbon reinforced epoxy), with peak magnitudes for surface pressure, velocity, current density and temperature changing by up to 88%. Such variation in local specimen surface loading does significantly vary the prediction of composite material thermal damage depth (up to 1200%) and surface damage area (up to 1314%). Moreover, this work, for the first time, provides predictions for the thermal damage suffered by both protected and unprotected composite specimens exposed to test standard Waveform B.
机译:前面的工作已经确定,可以建模人工测试雷电等离子体和复合试样损坏。然而,没有工作已经研究了样本表示在血浆的建模中的影响以及导致对样品复合损伤的影响。这里已经建模了四种不同的样本设计,具有用于模拟用于预测复合材料损伤的等离子体和Fe热电模拟方法的磁性信息动力学Fe多体型模型。对于本文建模的测试装置,已经发现样本表示对血浆全局结构的影响有限,即使样品特性的显着变化(例如,从铜到环氧树脂)。然而,局部样品表面负荷的值得注意的变化具有试样性能变化(例如环氧对碳增强环氧树脂),具有峰值幅度,用于表面压力,速度,电流密度和温度较长88%。局部样品表面负荷的这种变化确实可以显着改变复合材料热损伤深度(高达1200%)和表面损伤区域(高达1314%)的预测。此外,这项工作首次为受到暴露于测试标准波形B的受保护和未受保护的复合标本遭受的热损伤的预测提供了预测。

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