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Drill-exit temperature characteristics in drilling of UD and MD CFRP composites based on infrared thermography

机译:基于红外热成像的UD和MD CFRP复合材料钻探的钻探 - 出口温度特性

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摘要

This paper presents a comprehensive study on the complex drill-exit temperature characteristics in the drilling of unidirectional (UD) and multidirectional (MD) CFRPs using a state-of-art microscopy infrared imaging system. For the first time, temperature variation and distribution at drill exit have been revealed in full detail, associated with the CFRP material properties and drilling conditions. Results suggest that the actual drill/CFRP interactions have critical but similar effects on the drill-exit temperatures for UD and MD CFRPs. Specifically, three distinct cutting regions with varying temperature characteristics are evident when the main cutting edge is acting on the drill exit material. In all cases, the temperature distribution features elliptical shape, of which the eccentricity depends on the lay-up sequence and the drilling depth. In addition, the real-time temperature profiles and 2D/3D maximum temperature distribution maps are created with high visualization. With the aid of those findings, the relationships between drilling temperature maxima, their locations and drilling depths have been discovered and temperature effects on drill-exit damages have been elucidated for the first time. MD CFRP is proven more difficult to achieve high drilling qualities at certain fiber cutting angles than UD CFRP due to the associated temperature effects. Such important knowledge enables the identification of the heat affected zones and subsequently informs strategies for reducing the negative temperature effects.
机译:本文介绍了使用现有技术的显微镜红外成像系统钻探单向(UD)和多向(MD)CFRP钻孔中的复杂钻出温度特性的综合研究。由于CFRP材料特性和钻井条件,首次揭示了钻头出口的温度变化和分布。结果表明,实际的钻头/ CFRP相互作用对UD和MD CFRP的钻出温度具有重要的影响。具体地,当主切削刃作用在钻出喷射材料上时,具有不同温度特性的三个具有不同温度特性的不同切割区域。在所有情况下,温度分布具有椭圆形状,其中偏心率取决于叠层序列和钻孔深度。此外,使用高可视化创建实时温度曲线和2D / 3D最大温度分布图。借助这些发现,已经发现了钻井温度最大值,它们的位置和钻井深度之间的关系,并且首次阐明了对钻出损坏损坏的温度效应。由于相关的温度效应,经过证明在某些纤维切割角度比UD CFRP的纤维切割角度更难以实现高钻孔品质。这种重要知识使得能够识别热影响的区域,随后向策略通知降低负面温度效应。

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