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A fiber placement device and methodology for preparing 2-D and 3-D combinatorial microcomposites

机译:用于制备2-D和3-D组合微复合材料的纤维铺放装置和方法

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摘要

A fiber placement device is described and methodology is given for preparing two-dimensional (2-D) and three-dimensional (3-D) combinatorial microcomposites. Although 2-D microcomposites with uniform fiber spacing have been prepared previously, the preparation of uniformly spaced 3-D microcomposites with 6–20 μm diameter fibers is new. The preparation of these combinatorial specimens was motivated by research results from reference [Li et al. (1995) Compos Sci Technol 54:251]. These results showed that the mean fragment length of the broken fibers in an array of fibers of the shear-lag models increases as the inter-fiber separation decreases. It was noted that shear-lag theory predicts the opposite effect. Therefore, specimens of this type are needed to unambiguously verify this trend. In addition, data from this new technology should delineate the factors that influence critical flaw nucleation in unidirectional laminate composites. This paper is declared as a work of the U.S. Government and is not subject to copyright protection in the United States.
机译:描述了一种纤维铺放装置,并给出了制备二维(2-D)和三维(3-D)组合微复合材料的方法。尽管以前已经制备了具有均匀纤维间距的2-D微复合材料,但是制备具有6-20μm直径纤维的均匀间隔的3-D微复合材料是新的。这些组合标本的制备是受到参考文献的研究结果的推动[Li et al。 (1995)Compos Sci Technol 54:251]。这些结果表明,剪切滞后模型的纤维阵列中的断裂纤维的平均碎片长度随着纤维间分离的减小而增加。注意到剪切滞后理论预测了相反的效果。因此,需要这种类型的样本来明确验证这种趋势。此外,这项新技术的数据还应说明影响单向层压复合材料中关键缺陷成核的因素。本文声明为美国政府的工作,在美国不受版权保护。

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