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Review and Analysis of Processing Principles and Applications of Self-healing Composite Materials

机译:自愈复合材料处理原理与应用的回顾与分析

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Researchers and industries have showed a great interest on the technology of self-healing composites within the last two decades. Several innovations are reported in the area with particular focus on composites that heal micro to macro level cracks caused by fatigue loading. Polymer to metal foam matrix based self-healing materials are the primary practiced and researched materials. In polymer matrix composites, in particular, fracture propagates due to nano or micro cracks, which may be due to laminar failure by fiber rapture, delamination, matrix rapture, bridging and pullout of fiber that are common causes of composite failure modes to be healed early to sever stage. The other challenge in the applicability of polymer composites for critical structural components of aircrafts like wings and fins is to maintain uniform characteristics throughout the structure and its maintainability, which may be one of the areas for self-healing technology. Among the available techniques, capsule and vascular microencapsulation are commonly practiced. For capsule based system, a mini encapsulated healing agent and solid type chemical catalyst are impeded within the polymer matrix. The self-healing technology opens an opportunity to design and produce autonomous maintained components that are suitable to extend fatigue life of precious part exposed for dynamic loads like robotic arm, airplane and remote control devices. In this paper, the current state-of-art in the field of self-healing technologies reviewed and analyzed. The areas of research gap are identified and discussed for further research direction.
机译:研究人员和行业对过去二十年内的自我修复复合材料技术表现出极大的兴趣。该地区报道了几种创新,特别关注复合材料,该复合材料治愈了疲劳负荷引起的微量裂缝。聚合物到金属泡沫基质基础的自我愈合材料是主要实践和研究的材料。在聚合物基质复合材料中,特别地,由于纳米或微裂缝,裂缝传播,这可能是由于纤维Rapture,分层,矩阵Rapture,纤维的桥接和拉出是常见的复合失败模式的常见原因切断阶段。用于翅膀和翅片等飞机的关键结构部件的聚合物复合材料适用性的其他挑战是在整个结构中保持均匀的特征及其可维护性,这可能是自我修复技术的领域之一。在可用的技术中,通常实践胶囊和血管微胶囊。对于基于胶囊的系统,在聚合物基质内阻抗迷你包封愈合剂和固体型化学催化剂。自我修复技术开辟了一个设计和生产自主维护组件的机会,该组件适合于延长为机器人臂,飞机和遥控装置等动态载荷所暴露的宝贵部分的疲劳寿命。本文在审查和分析了自我修复技术领域的目前最先进的。确定和讨论了研究差距的领域,以获得进一步的研究方向。

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