Impact-Induced Damage Progression in 2-D and 3-D Woven Composite Systems

J. N. Baucom, M. Zikry
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引用次数: 2

Abstract

The role of fabric architecture on the impact-induced damage progression and perforation resistance of glass-fiber reinforced vinyl-ester resin panels under dynamic loading condition is investigated. Three fabric preforms are considered: a 2-dimensional, plain-woven laminate, a commercially available biaxially reinforced warp-knit, and a 3-dimensional, orthogonally woven preform. Composite samples are subjected to multiple impacts, until perforation, and the impactor position and acceleration are monitored throughout each event, resulting in a visualization of dynamic energy dissipation. Failure modes of the various material systems are characterized. The radial damage expansion was smallest for the 2-d laminate, larger for the biaxially-reinforced warp-knit, and largest for the 3-d orthogonal woven composite. The 3-d composite survived more hits and dissipated more total energy than the other systems. The difference may be due to the additional energy absorption mechanisms, which involve the crimped portion of z-tows in the 3-d composites. This implies that failure may be controlled by manipulation of the properties of the z-tows. It also indicates that the surface condition of 3-d orthogonally woven composites can strongly affect the progression of impact-induced damage.
二维和三维编织复合材料系统的冲击损伤进展
研究了动态加载条件下纤维结构对玻璃纤维增强乙烯酯树脂板冲击损伤进展和抗穿孔性能的影响。三种织物预成型被考虑:二维,平纹编织层压板,市售双轴增强经编,和三维,正交编织预成型。复合材料样品受到多次冲击,直到射孔,并在每次事件中监测冲击器的位置和加速度,从而实现动态能量耗散的可视化。描述了各种材料体系的失效模式。径向损伤扩展在二维复合材料中最小,在双轴增强经编材料中最大,在三维正交编织复合材料中最大。与其他系统相比,3d复合系统经受住了更多的冲击,消耗了更多的总能量。这种差异可能是由于额外的能量吸收机制,这涉及到三维复合材料中z-tow的卷曲部分。这意味着可以通过操纵z轴的特性来控制失败。三维正交编织复合材料的表面状况对冲击损伤的发展有很大的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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