首页> 外文期刊>Materialpruefung: Werkstoffe und Bauteile, Forschung Prufung Anwendung >High-precision deformation and damage development assessment of composite materials by high-speed camera, high-frequency impulse and digital image correlation techniques
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High-precision deformation and damage development assessment of composite materials by high-speed camera, high-frequency impulse and digital image correlation techniques

机译:高速相机,高频脉冲和数字图像关联技术对复合材料的高精度变形和损伤发展评估

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摘要

Although composite materials like wood, vulcanized fiber and carbon reinforced plastic (CFRP) are already investigated by means of their mechanical properties, the abrupt fracture mechanism as well as the deformation behavior right before and after fracture has not been investigated. However, it is marginally investigated for CFRP because of the quite high fracture speed. The knowledge about the damage evolution as the crack start and propagation can help to improve the strength and sensitivity to fracture by improving the materials structure and to utilize these materials for structural applications. For the investigated materials, fracture happens abruptly as it is the nature of composites and the detailed fracture mechanisms could not be detected by conventional measurement techniques. Therefore, an innovative combination of testing devices is presented which is able to fill this gap. Tensile tests were performed to receive conventional stress-strain curves. At the fracture stage, a high-speed camera recorded the fracture process. This information could be combined with digital image correlation (DIC) to visualize the deformation behavior. At the same time acoustic emission (AE) was used to detect the spectrum of mechanical vibrations which gives information about the released energy due to fracture. The challenging triggering of the high-speed camera was solved for each material individually. By using improved light sources, the recording speed could be set up to 2 million frames per second (Mfps). The investigations show different fracture mechanisms for each composite. Wood and vulcanized fiber were also investigated in different directions due to their anisotropy.
机译:尽管已经通过机械性能研究了木材,硫化纤维和碳增强塑料(CFRP)等复合材料,但尚未研究其突然断裂的机理以及断裂前后的变形行为。但是,由于断裂速度很高,因此对CFRP进行了少量研究。关于裂纹扩展和裂纹扩展的知识可以通过改善材料结构并将这些材料用于结构应用来帮助提高强度和断裂敏感性。对于所研究的材料,断裂是突然发生的,因为这是复合材料的本质,而传统的测量技术无法检测到详细的断裂机理。因此,提出了一种创新的测试设备组合,可以弥补这一空白。进行拉伸测试以接收常规的应力-应变曲线。在断裂阶段,一台高速照相机记录了断裂过程。该信息可以与数字图像相关性(DIC)结合使用以可视化变形行为。同时,使用声发射(AE)来检测机械振动的频谱,该频谱可提供有关由于断裂而释放的能量的信息。针对每种材料分别解决了高速相机的挑战性触发。通过使用改进的光源,记录速度可以设置为每秒200万帧(Mfps)。研究表明每种复合材料的断裂机理不同。由于木材和硫化纤维的各向异性,它们也在不同方向上进行了研究。

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