Self-Healing Composites Using Embedded Microspheres

D. Jung, A. Hegeman, N. Sottos, P. Geubelle, S. White
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引用次数: 22

Abstract

A self-repairing polyester matrix composite material is described which utilizes embedded polyoxymethylene urea (PMU) microspheres to store a crack filling agent to be released into the crack and rebond the crack faces. The developed repair mechanism uses naturally occurring functional sites in the polyester matrix network to trigger the repair action. The repair agent is mostly composed of styrene monomers and high molecular weight polystyrene. Microscopic observations of the microsphere/crack interaction are presented. Of particular interest is the process with which the microspheres break and release their content when encountered by a crack. The effects of the microspheres on the stiffness and toughness of the polyester resin are also studied. Using standard tensile samples, the composite elastic modulus has been found to decrease with the volume fraction of microspheres, while the fracture toughness of tapered double cantilever beam (TDCB) specimens is shown to reach a maximum value at approximately 10% volume fraction. Examinations of the fracture surfaces show tails extending from the microspheres, indicating crack pinning and crack front bowing as the primary toughening mechanisms. An enhanced level of adhesion between the microsphere and matrix has been found to decrease the composite fracture toughness and increase the incidence of sphere breakage on the fracture surface.
使用嵌入微球的自修复复合材料
描述了一种自修复聚酯基复合材料,该材料利用嵌入式聚氧亚甲基尿素(PMU)微球来储存裂缝填充剂,该填充剂释放到裂缝中并重新粘合裂缝表面。所开发的修复机制利用聚酯基质网络中天然存在的功能位点来触发修复动作。修复剂主要由苯乙烯单体和高分子量聚苯乙烯组成。给出了微球/裂纹相互作用的微观观察结果。特别令人感兴趣的是微球在遇到裂缝时破裂并释放其内容物的过程。研究了微球对聚酯树脂刚度和韧性的影响。在标准拉伸试样中,复合材料弹性模量随微球体积分数的增加而减小,而锥形双悬臂梁(TDCB)试样的断裂韧性在体积分数约为10%时达到最大值。对断口表面的检查显示,微球延伸出尾巴,表明裂纹钉住和裂纹前缘弯曲是主要的增韧机制。结果表明,微球与基体之间的黏附程度增强,降低了复合材料的断裂韧性,增加了断口表面球体断裂的发生率。
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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