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Damage Tolerance of Layer-Wise Hybrid Laminates Consisting of Glass Reinforced Flexible and Rigid Epoxy Resins

机译:由玻璃增强柔性和刚性环氧树脂组成的层性混合层压板的损伤容差

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The aim of this investigation is to increase the low velocity impact damage tolerance of a fiber-dominated composite laminate scaled down from that which might be used in a typical rotorcraft blade. The approach taken was to co-cure flexible matrix composites (FMCs) with traditional, rigid (glassy) matrix composites (RMCs) in a technique dubbed layer-wise hybridization (LWH). Small-scale test specimens were thin walled tubes consisting of ±45-deg. and ±2-deg. filament wound layers. Four types of tube were fabricated; one type contained all rigid epoxy layers and the other types each had one FMC layer located at a different location in the laminate. The damage tolerance of the tubes was evaluated by comparing the axial compressive strength of unindented tubes with the strength of tubes that had been subjected to a quasi-static lateral indentation force of 2500 N. The post-indentation compressive strength of the tubes decreased with an increasing area of matrix intraply cracking and delamination, with the all-RMC tubes having the least area of damage and the LWH tube with an inner layer of FMC having the most. However, the type of damage caused by the indentation was related to the percent reduction in strength. The all-RMC tubes experienced the most severe matrix intraply cracking near the indentation and had a greater percent drop in strength than one type of LWH tube that had less matrix cracking and therefore a lower percent reduction in strength. In the cases investigated, replacing an angle-ply RMC layer with a comparable FMC layer resulted in a loss of strength for both unindented and indented tubes. However, on a basis of percent of unindented strength, including an FMC layer was shown to be viable approach to reduce the amount of damage and percent reduction of compressive strength caused by indentation.
机译:该研究的目的是增加纤维主导的复合层压板的低速冲击损伤耐受,从而从典型的旋转器刀片中使用。采取的方法是用一种具有传统的刚性(玻璃状)基复合材料(RMC)的技术进行柔性基质复合材料(FMC),其具有杂交的技术(LWH)。小型试样是薄壁管,由±45°组成。和±2°。长丝缠绕层。制造四种类型的管;一种类型含有所有刚性环氧树脂层,并且各种类型各自具有位于层压板中不同位置的一个FMC层。通过比较未解压缩管的轴向抗压强度与已经进行了2500nd的准静态缩进力的管的强度进行了比较了未解压缩管的轴向抗压强度来评估管的损伤容差。用管道的压痕压缩强度降低增加矩阵施印裂解和分层的区域,具有损坏的最小损坏区域和具有最多的FMC内层的LWH管的全RMC管。然而,压痕造成的损害的类型与强度降低的百分比有关。全RMC管经历了压痕附近最严重的基质基质裂缝,并且具有比一种类型的LWH管更大的强度下降,其具有较少的基质破裂,因此强度降低较低的百分比。在研究的情况下,用相当的FMC层替换角度帘布层RMC层,导致无解狭窄和凹管的强度损失。然而,基于不羁的强度百分比,包括FMC层被证明是可行的方法,以减少压缩强度降低损伤量的损伤量和缩进引起的抗压强度的百分比。

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