Role of particle material and geometry in the ballistic performance of nanoparticle-impregnated Kevlar fabric

IF 2.3 3区 材料科学 Q3 MATERIALS SCIENCE, COMPOSITES Journal of Composite Materials Pub Date : 2024-06-01 DOI:10.1177/00219983241259130
Muhammad Ali Bablu, Nicholas E Nowak, James M Manimala
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Abstract

The possibility of enhancing the ballistic performance of aramid fabrics such as Kevlar through the impregnation of nanoparticles is well established. In this study, the influence of the nanoparticle’s specifications such as size, shape, and material on the underlying mechanisms is investigated. A colloid-based treatment process is used to impregnate dry nanoparticles into Kevlar fabric. Using a customized gas gun rig, neat and treated samples are tested to determine the kinetic energy absorbed. Silica, alumina, and zinc oxide nanoparticles ranging from 10 to 125 nm, with spherical or cylindrical shape are considered. Silica treated samples perform significantly better (83% increase in energy absorbed vs neat fabric) than alumina or zinc oxide treated samples, likely due to greater agglomeration between yarn interfaces leading to enhanced frictional mechanisms. The exit-face damaged zone area acts as a surrogate for energy absorbed as it correlates well across all samples. Compared to samples with three layers treated individually, samples with three layers treated together display a 21% enhancement in the energy absorbed. Specific energy absorbed for three layers treated together with 80-nm silica is nearly 3 times higher than that for the neat fabric. Samples with three layers treated together with 80-nm silica provide the same performance as the neat fabric for a projectile that is nearly 70 m/s faster. Hybrid structural materials such as nanoparticle-fabric composites offer a promising route to enhance ballistic performance without weight penalty, while being amenable to multifunctional applications.
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颗粒材料和几何形状对纳米颗粒浸渍凯夫拉纤维弹道性能的影响
通过浸渍纳米粒子来提高芳纶织物(如凯夫拉)的防弹性能的可能性已经得到证实。本研究探讨了纳米粒子的规格(如尺寸、形状和材料)对其基本机制的影响。采用基于胶体的处理工艺将干纳米粒子浸渍到 Kevlar 织物中。使用定制的气枪钻机,对纯净样品和处理过的样品进行测试,以确定吸收的动能。测试对象包括二氧化硅、氧化铝和氧化锌纳米颗粒,粒径从 10 纳米到 125 纳米不等,形状为球形或圆柱形。二氧化硅处理过的样品比氧化铝或氧化锌处理过的样品性能要好得多(吸收的能量比纯净织物增加 83%),这可能是由于纱线界面之间的团聚作用更大,从而增强了摩擦机制。出口面受损区面积可作为吸收能量的替代值,因为它与所有样品都有很好的相关性。与三层单独处理的样品相比,三层一起处理的样品吸收的能量增加了 21%。用 80 纳米二氧化硅一起处理的三层样品吸收的特定能量比纯织物高出近 3 倍。使用 80 纳米二氧化硅同时处理三层的样品,在射速接近 70 米/秒的情况下,其性能与普通织物相同。纳米粒子-织物复合材料等混合结构材料为在不增加重量的情况下提高弹道性能提供了一条很有前景的途径,同时也适合多功能应用。
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来源期刊
Journal of Composite Materials
Journal of Composite Materials 工程技术-材料科学:复合
CiteScore
5.40
自引率
6.90%
发文量
274
审稿时长
6.8 months
期刊介绍: Consistently ranked in the top 10 of the Thomson Scientific JCR, the Journal of Composite Materials publishes peer reviewed, original research papers from internationally renowned composite materials specialists from industry, universities and research organizations, featuring new advances in materials, processing, design, analysis, testing, performance and applications. This journal is a member of the Committee on Publication Ethics (COPE).
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