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Extreme shearography: Development of a high-speed shearography instrument for quantitative surface strain measurements during an impact event

机译:极端Shearography:在冲击事件期间开发用于定量表面应变测量的高速剪切仪器

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Monitoring of extreme dynamic loadings on composite materials with high temporal and spatial resolution provides an important insight into the understanding of the material behaviour. Quantitative measurement of the surface strain at the first moments of the impact event may reveal the initiation of the failure mechanisms leading to damage. For this purpose, we developed a shearography instrument for strain measurements during a severe impact event at mu s temporal resolution. This paper presents the design, development and experimental measurement of the surface strain during an impact on aluminium and composite samples. The final design realises measurements of the in- and out-of-plane surface strain components to improve coupling of experimental data with the numerical models. The experiments on aluminium and composite specimens revealed the main elastic material response to be in the first 1-2 mu s after the impact followed by the initiation and propagation of flexural waves causing in- and out-of-plane deformation. Further analysis of the wavefronts will be used as input and validation data for new numerical and analytical models of the impact response of composites and for validation of other experimental techniques as acoustic emission and embedded piezo sensors.The set of technical parameters of the developed shearography instrument makes it one of the most extreme applications of shearography for material characterisation. The framework for this work is the "EXTREME Dynamic Loading - Pushing the Boundaries of Aerospace Composite Material Structures" Horizon 2020 project.
机译:监测具有高时和空间分辨率的复合材料上极端动态载荷提供了对理解材料行为的重要洞察。在冲击事件的第一矩处的表面应变的定量测量可能揭示了导致损坏的失效机制的启动。为此,我们开发了一种用于在MU S Temporate Stocation的严重影响事件期间进行应变测量的Shearography仪器。本文介绍了在铝和复合样品的冲击期间表面应变的设计,开发和实验测量。最终设计实现了和外平面外表面应变组分的测量,以改善使用数值模型的实验数据的耦合。铝和复合标本的实验显示了在冲击后的第一1-2μs之后的主弹性材料的响应,然后弯曲波的起始和传播引起平面和外平面变形。对波前的进一步分析将用作复合材料的冲击响应的新数值和分析模型的输入和验证数据,以及用于验证其他实验技术作为声发射和嵌入式压电传感器。该组技术参数仪表使其成为材料表征的沉焦最极端的应用之一。这项工作的框架是“极端动态装载 - 推动航空综合材料结构的边界”地平线2020项目。

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