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Development of novel multilayer materials for impact applications: A combined numerical and experimental approach

机译:用于冲击应用的新型多层材料的开发:数值和实验相结合的方法

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摘要

A well-verified and validated numerical model was used to investigate stress wave propagation in a multilayer material subjected to impact loading. The baseline material consisted of a ceramic faceplate and composite backing plate separated by a rubber or teflon foam interlayer: several variants were investigated in which the number, type, and total thicknesses of the interlayers were altered. Comparison of the variants showed that the use of multiple teflon foam interlayers could drastically reduce the average stress in the multilayer material. Based on the numerical results, further experimental work was undertaken upon one of the variants. Very large and unexpected tensile stress oscillations were observed in the ceramic layers, leading to a refinement of the numerical model which successfully reproduced the oscillations and also demonstrated that separation of the sample layers led to trapping of the stress wave within the layers. Use of the validated numerical model allowed detailed analysis of the processes of wave transmission and demonstrates the important synergy that can exist between experimental and modeling studies. The current study provides a valuable starting point for designing future multilayer materials with specific, controlled properties.
机译:一个经过充分验证和验证的数值模型用于研究应力波在多层材料中承受冲击载荷的传播。基准材料由陶瓷面板和复合背板组成,这些面板被橡胶或特氟隆泡沫中间层隔开:研究了几种变体,其中中间层的数量,类型和总厚度发生了变化。变体的比较表明,使用多个聚四氟乙烯泡沫夹层可以大大降低多层材料的平均应力。根据数值结果,对其中一个变体进行了进一步的实验工作。在陶瓷层中观察到非常大且出乎意料的拉伸应力振荡,从而导致数值模型的改进,该模型成功地再现了振荡,并且还证明了样品层的分离导致应力波在层内的捕获。使用经过验证的数值模型可以对波的传播过程进行详细分析,并证明实验研究和建模研究之间可能存在重要的协同作用。当前的研究为设计具有特定可控特性的未来多层材料提供了宝贵的起点。

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