首页> 外文会议>ASME international mechanical engineering congress and exposition >MODIFICATION OF PULLOUT BEHAVIOR OF KEVLAR FABRIC BY ZINC OXIDE NANOWIRE REINFORCEMENT
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MODIFICATION OF PULLOUT BEHAVIOR OF KEVLAR FABRIC BY ZINC OXIDE NANOWIRE REINFORCEMENT

机译:氧化锌纳米线增强对凯夫拉织物拉拔性能的影响

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The fixture development of body armor is to develop a lightweight, and wearable garment system without a loss of ballistic impact resistance. High performance fabrics, such as Kevlar, have been utilized for body armor due to their high energy absorption and lightweight characteristics. However, additional reinforcement is necessary for Kevlar fabric to meet the protection requirements for body armor against typical ballistic threats. Thick layers of fabric or embedded ceramic plates have been used to meet these requirements at the expense of increased weight of the armor and reduced mobility of the user. Thus, much research has been conducted on this topic to increase the ballistic impact resistance of Kevlar fabrics, mainly focused on the understanding and modeling of ballistic impact behavior. Due to the significant effect of damage mechanisms on ballistic impact response, these mechanisms should vastly be studied to better understand the ballistic impact response of Kevlar. When a projectile impacts a woven fabric, the imparted energy is dissipated through several damage mechanisms including tow pullout, local tow failure at the point of impact, and remote tow failure. Among those mechanisms, tow pullout is especially critical in the case of a penetrator with a blunt face impacting a fabric with non-penetrating velocities and is strongly influenced by friction between tows. In this work, we employed a novel method to increase the friction between Kevlar tows by synthesizing zinc oxide nanowires onto the fabric surface. As a result, vertically-aligned zinc oxide nanowires were grown on the fabric surface and tailored to achieve an optimum ballistic performance response reaching an enhancement of up to 390% in tow pullout peak load compared to untreated fabrics. Additionally, the effect of various surface functionalization processes and nanowire morphology is investigated so that an optimum process is developed for an efficient ballistic performance response.
机译:防弹衣的固定装置开发是开发一种轻质且可穿戴的服装系统,而不会损失防弹冲击性。高性能织物(例如凯夫拉尔纤维)因其高能量吸收和轻质特性而被用于防弹衣。但是,凯夫拉纤维织物需要额外的加固,以满足防弹衣对典型弹道威胁的防护要求。厚的织物或嵌入的陶瓷板层已被用来满足这些要求,但以增加装甲的重量和降低使用者的活动性为代价。因此,已经对该主题进行了很多研究以提高凯夫拉纤维织物的抗冲击性,主要集中在对冲击性行为的理解和建模上。由于损坏机制对弹道冲击反应的重大影响,应广泛研究这些机制,以更好地理解凯夫拉尔的弹道冲击反应。当弹丸撞击机织织物时,所传递的能量会通过多种损坏机制消散,这些机制包括拖曳牵拉,撞击点的局部拖曳失效和远距离拖曳失效。在这些机制中,对于具有钝面的穿透器以非穿透速度撞击织物且丝束之间的摩擦力强烈影响的情况,丝束的拔出尤为重要。在这项工作中,我们采用了一种新颖的方法,通过将氧化锌纳米线合成到织物表面上来增加Kevlar丝束之间的摩擦。结果,垂直对齐的氧化锌纳米线生长在织物表面上,并进行了定制,以实现最佳的弹道性能响应,与未处理的织物相比,丝束拉拔峰值载荷提高了高达390%。此外,研究了各种表面功能化过程和纳米线形态的影响,从而为有效的弹道性能响应开发了最佳过程。

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