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Attachment mode performance of network-modeled ballistic fabric shielding

机译:网络模型弹道织物屏蔽的附着模式性能

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摘要

A central issue in the use of ballistic fabric shielding is the mode of attachment to the structure that it is intended to protect. In order to investigate this issue, a discrete multi-scale yarn-network model is developed for structural fabric undergoing ballistic impact, based on work found in Zohdi and Powell [Zohdi TI, Powell D. Multiscale construction and large-scale simulation of structural fabric undergoing ballistic impact. Comput Meth Appl Mech Eng 2006;195:94-109] and Zohdi [Zohdi TI. Modeling/simulation of progressive penetration of multilayered ballistic fabric shielding. Comput Mech 2002;29:61-7]. The model is comprised of a network of yarn with stochastic properties determined by smaller-scale fibrils, which are randomly misaligned. The effects of stochasticity on the overall response are explored, and the model is compared against macro-scale experiments. The key feature of the model is the fact that it does not depend on phenomenological parameters, and can be calibrated by simply measuring the properties of an individual, smallest-scale, fibril. The properties of a fibril are easily ascertained from a simple tension test. The response of the overall fabric model and ballistic experiments are in excellent agreement. The model indicates that fabric which is attached by being pinned at the corners generally absorbs more energy, relative to fabric clamped along the sides. The basis for this result is discussed at length in the body of this work. Furthermore, it is observed that a uniform-yarn model, one which ignores the stochastic nature of the yarn, over-estimates the amount of energy absorbed.
机译:使用防弹织物防护罩的中心问题是与要保护的结构的连接方式。为了研究此问题,基于在Zohdi和Powell [Zohdi TI,Powell D.的多尺度构造和大规模模拟中发现的工作],研究了遭受弹道冲击的结构织物的离散多尺度纱线网络模型。遭受弹道冲击。 Comput Meth Appl Mech Eng 2006; 195:94-109]和Zohdi [Zohdi TI。多层防弹织物防护层渐进渗透的建模/模拟。 Comput Mech 2002; 29:61-7]。该模型由具有随机特性的纱线网络组成,该随机特性由较小比例的原纤维决定,这些原纤维是随机未对准的。探索了随机性对整体响应的影响,并将该模型与大规模实验进行了比较。该模型的关键特征在于它不依赖于现象学参数,并且可以通过简单地测量单个最小尺度的原纤维的特性来进行校准。通过简单的拉伸试验可以容易地确定原纤维的性质。整个织物模型和弹道实验的响应非常吻合。该模型表明,相对于沿侧面夹紧的织物,通过钉在角上而附着的织物通常会吸收更多的能量。此结果的基础在本文的主体中进行了详细讨论。此外,可以看出,忽略纱线随机性的均匀纱线模型高估了吸收的能量。

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