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The ballistic performance of thick ultra high molecular weight polyethylene composite

机译:厚超高分子量聚乙烯复合材料的防弹性能

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摘要

Ultra-high molecular weight polyethylene (UHMW-PE) fibre-reinforced composite is a promising material for ballistic protection due to its high strength, stiffness and low density. For thick sections of this material however, there is limited understanding of the mechanisms driving ballistic performance. Existing analysis tools do not allow for a good approximation of performance, while existing numerical models are either incapable of accurately capturing the response of thick UHMW-PE composite to ballistic impact or are unsuited to model thick targets. In this thesis, the response of thick UHMW-PE composite to ballistic impact was experimentally investigated. Panel thicknesses ranging from 9 mm to 100 mm impacted by 12.7 mm and 20 mm calibre fragment simulating projectiles (FSPs) were investigated. The penetration and failure mechanisms were identified by inspection of impacted targets, and scanning electron microscopy was conducted to inspect the load-bearing fibres around the penetration cavity. Thick targets demonstrated a two-stage penetration process: shear plugging during the initial penetration followed by the formation of a transition plane and bulging of a separated rear panel. A new analytical model was developed for thick UHMW-PE composite impacted by blunt projectiles to describe the two stages of penetration identified in the experimental work. The analytical model is based on energy and momentum conservation laws, and uses an energy balance between the projectile kinetic energy and the energy absorbed by the target to predict the ballistic limit velocity. The model was validated against experimental ballistic limit results and showed excellent agreement for thick targets. Existing analytical models based on membrane theory were validated against results of thinner targets and demonstrated to be more suitable. A numerical modelling methodology was developed for the ballistic impact analysis of thick UHMW-PE composite using a commercial hydrocode. A novel approach was used to model interlaminar failure by dividing the panel into sub-laminates connected by breakable bonds. A new failure-based element erosion model was implemented with a user subroutine, which more accurately accounts for the directional properties of fibre-reinforced composites than existing strain-based models. The model is extensively validated against experimental ballistic data. The model gave excellent predictions for depth of penetration, residual velocity and ballistic limit, with results within 5% of experiment for all conditions considered (12.7 mm and 20 mm FSP, 9 mm to 100 mm thick targets and impact velocities between 400 m/s to 2000 m/s). The predictions of the penetration mechanisms and target bulge behaviour were also compared in terms of the target shear plugging ratio and bulge hinge and apex position, also demonstrating very good correlation with the experimental results.
机译:超高分子量聚乙烯(UHMW-PE)纤维增强复合材料具有高强度,刚度和低密度的特点,是一种有希望的防弹材料。但是,对于这种材料的较厚部分,对驱动弹道性能的机理了解有限。现有的分析工具无法很好地近似性能,而现有的数值模型要么无法准确捕获厚的UHMW-PE复合材料对弹道冲击的响应,要么不适合建模厚的目标。本文通过实验研究了厚的UHMW-PE复合材料对弹道冲击的响应。研究了受12.7 mm和20 mm口径碎片模拟弹丸(FSP)影响的9 mm至100 mm的面板厚度。通过检查撞击的靶标确定穿透和破坏的机理,并进行扫描电子显微镜检查以检查穿透腔周围的承载纤维。较厚的目标物表现出两阶段的穿透过程:在初始穿透过程中发生剪切堵塞,然后形成过渡平面并分离后面板膨胀。针对钝性弹丸撞击的厚的UHMW-PE复合材料,开发了一种新的分析模型,以描述在实验工作中确定的渗透的两个阶段。该分析模型基于能量和动量守恒定律,并使用射弹动能与目标吸收的能量之间的能量平衡来预测弹道极限速度。该模型已针对实验性弹道极限结果进行了验证,并针对厚目标显示出极好的一致性。现有的基于膜理论的分析模型已针对较薄目标的结果进行了验证,并被证明更合适。开发了一种数值建模方法,用于使用商用液压规范对厚的UHMW-PE复合材料进行弹道冲击分析。通过将面板分成通过易断裂键连接的亚层压板,一种新颖的方法被用来模拟层间破坏。使用用户子例程实现了新的基于破坏的元素侵蚀模型,该子例程比现有的基于应变的模型更准确地说明了纤维增强复合材料的方向性。该模型已针对实验弹道数据进行了广泛验证。该模型对穿透深度,残余速度和弹道极限提供了出色的预测,对于所有考虑的条件(12.7毫米和20毫米FSP,9毫米至100毫米厚的靶材以及400 m / s之间的撞击速度),结果均在实验值的5%至2000 m / s)。还根据目标剪切堵塞率,凸起铰链和顶点位置对渗透机理和目标凸起行为的预测进行了比较,也证明与实验结果具有很好的相关性。

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    Nguyen L;

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