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A Method for Rapid Determination of Fiber Orientation in Reinforced Composites at Lab and Component Scale

机译:一种快速测定实验室和组分尺度增强复合材料中纤维取向的方法

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Thermal and mechanical response of the fiber reinforced polymeric, metallic,and ceramic composites are strongly dependent on reinforcement fiber orientation andmatrix resin rich zones within a composite. In many manufacturing techniques thefinal orientation is an outcome of the process and thus, necessitates quantification afterformation to validate the material performance to design specifications. Currentorientation measurement techniques are laborious, destructively invasive, expensive toimplement, and are limited to small spatial domains. This creates a significantlimitation in the ability to validate performance at the part scale where predictivecapability is challenging and a barrier to market entry, limiting the use of light weight,energy efficient glass and carbon fiber reinforced composite materials for structuralapplications. Hence, there is an immediate need for rapid, non-destructive fiber orfiber bundle orientation evaluation for large spatial domains, including whole parts,for expeditious prototyping, composite engineering, and quality assessment to bringnovel fiber reinforced composites to wind, compressed gas storage, infrastructure andautomotive markets. A novel method is developed by the authors using a customThermal Digital Image Correlation (TDIC) method with which one can image a fiberreinforced composite materials including epoxy, vinyl ester, polyester, phenolic, orthermoplastic resin with carbon fiber, glass fiber, basalt fiber or natural fiberreinforcements.
机译:纤维增强聚合物,金属的热和机械响应,陶瓷复合材料强烈依赖于增强纤维方向和复合材料中的基质树脂富株。在许多制造技术中最终定位是过程的结果,从而需要量化形成验证材料性能的设计规范。当前的定向测量技术是费力,破坏性的侵入性,昂贵实施,并限于小空间域。这产生了重要意义在预测的零件规模处验证性能的能力的限制能力挑战,市场进入障碍,限制了轻量重,节能玻璃和碳纤维增强复合材料的结构应用程序。因此,立即需要快速,无损纤维或大型空间域的纤维束取向评估,包括整个零件,用于迅速的原型设计,复合工程和质量评估带来新型纤维增强复合材料,压缩气体储存,基础设施和基础设施汽车市场。作者使用自定义开发了一种新的方法热数字图像相关(TDIC)方法,其中一个方法是可以图像的光纤增强复合材料,包括环氧树脂,乙烯基酯,聚酯,酚醛或具有碳纤维,玻璃纤维,玄武岩纤维或天然纤维的热塑性树脂加强。

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