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Functionalization of spherical alumina nano-particles for enhancing the performance of PAEK-based composites

机译:球形氧化铝纳米颗粒用于提高PAEK基复合材料性能的官能化

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摘要

Nano-particles (NPs) and their role in controlling the performance of composites is the most intensively researched field with still limited understanding. The domain of investigating nano-mechanisms operative during tribological contacts, especially when particles of contrasting properties are simultaneously added in the polymer composite for exploration of synergism, is almost an untouched area. In this work, graphite particles (soft and layer-lattice structure) (15%) were co-added with 2% NPs of alumina (hard and spherical) in a composite containing PAEK (poly aryl ether ketone) and short glass fibers (35%). In another composite, these NPs were siloxane functionalized to investigate the effect of functionalization. In-depth investigations on physical, mechanical, and tribological properties along with detailed analysis of mechanisms by FESEM-EDAX (Field-Emission Scanning electron microscopy-Energy Dispersive Spectroscopy), Micro-Raman spectroscopy (MRS), atomic force microscopy (AFM), goniometry, nano-indentation, etc. led to a conclusion that the inclusion of hard and spherical NPs changes the fundamental process of area contact to a point contact to a great extent resulting in further reduction in friction and wear. Particles of graphite, on the other hand, were finally found to be converted into nano-graphene sheets during severe shearing based on AFM investigations. Increase in hardness due to NPs was found to be a reason for enhanced wear resistance (WR). Functionalized NPs led to the best properties in every case because of enhanced adhesion with the resin, which minimized the chances of being thrown out in wear debris.
机译:纳米粒子(NPS)及其在控制复合材料性能方面的作用是最强烈的研究领域,仍然有限。研究在摩擦学触点期间进行纳米机制的域,特别是当在聚合物复合材料中同时加入对比度特性的颗粒以进行协同作用,几乎是一个不受影响的区域。在这项工作中,将石墨颗粒(柔软和层晶格结构)(15%)加入含有PAEK(聚芳基醚酮)和短玻璃纤维的复合材料中的2%NPS(硬质和球形)(硬质和球形)(35 %)。在另一种复合材料中,这些NPS是官能化的硅氧烷,以研究官能化的作用。对物理,机械和摩擦学特性的深入研究以及FeSem-Edax(现场 - 发射扫描电子显微镜 - 能量色散光谱),微拉曼光谱(MRS),原子力显微镜(AFM)的机制的详细分析,焦管测量仪,纳米压痕等导致了结论:包含硬质和球形NPS在很大程度上改变了面积接触的基本过程,导致摩擦和磨损进一步降低。另一方面,石墨颗粒在基于AFM调查的严重剪切期间,最终发现最终发现在严重剪切期间转化为纳米石墨烯片。发现由于NPS的硬度增加是增强耐磨性(WR)的原因。功能化的NPS导致各种情况下的最佳性能,因为与树脂的粘合增强,这最小化了磨损碎片中抛出的机会。

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