Investigating the impact of extreme environments on the interlaminar performance of nanoparticle-reinforced carbon fiber composites

Se-Yoon Kim, Sanjay Kumar, Dong-Wook Hwang, Yun-Hae Kim
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Abstract

This study investigates the influence of extreme environmental conditions on the fracture toughness of halloysite nanotube (HNT)-reinforced carbon fiber-reinforced polymer (CFRP) composites. The focus is on the impact of exposure to high humidity and its effects on the mechanical properties of the composites. The study reveals that exposure to high humidity enhances the fracture toughness of HNT-modified CFRP composites, attributed to the entrapped moisture between HNTs and the polymer matrix. This phenomenon enhances crack bridging and contributes to improved mechanical properties. Furthermore, the HNT-modified composites exhibit superior environmental degradation resistance compared to unmodified composites, demonstrating the potential of HNTs as reinforcement for advanced composite materials. The investigation underscores the significance of considering environmental factors in nanoparticle-reinforced composite design and applications, paving the way for the development of durable, high-performance materials capable of withstanding extreme conditions. The findings emphasize the need for continued research to enhance the durability and reliability of such composites, thereby offering sustainable solutions across a range of applications. This study contributes valuable insights towards the design and optimization of fracture-resistant composite materials for demanding environments.
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研究极端环境对纳米粒子增强碳纤维复合材料层间性能的影响
本研究探讨了极端环境条件对霍洛石纳米管(HNT)增强碳纤维增强聚合物(CFRP)复合材料断裂韧性的影响。重点是暴露在高湿度环境中的影响及其对复合材料机械性能的影响。研究发现,暴露在高湿度环境中会增强 HNT 改性 CFRP 复合材料的断裂韧性,这归因于 HNT 和聚合物基体之间的夹带水分。这种现象增强了裂缝桥接,有助于改善机械性能。此外,与未改性复合材料相比,HNT 改性复合材料表现出更优越的耐环境降解性,这证明了 HNT 作为先进复合材料增强材料的潜力。这项研究强调了在纳米粒子增强复合材料的设计和应用中考虑环境因素的重要性,为开发能够承受极端条件的耐用高性能材料铺平了道路。研究结果强调有必要继续开展研究,以提高此类复合材料的耐用性和可靠性,从而为各种应用提供可持续的解决方案。这项研究为设计和优化用于苛刻环境的抗断裂复合材料提供了宝贵的见解。
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