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Ramifications of projectile velocity on the ballistic dart penetration of sand.

机译:弹丸速度对弹道飞镖穿透沙子的影响。

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摘要

With the advent of novel in-situ experimental measurement techniques, highly resolved quantitative observations of dynamic events within granular media can now be made. In particular, high speed imagery and digital analysis now allow for the ballistic behaviors of sand to be examined not only across a range of event velocities but across multiple length scales. In an attempt to further understand the dynamic behavior of granular media, these new experimental developments were implemented utilizing high speed photography coupled with piezo-electric stress gauges to observe visually accessible ballistic events of a dart penetrating Ottawa sand. Projectile velocities ranged from 100 to over 300 meters per second with two distinct chosen fields of view to capture bulk and grain-scale behaviors. Each event was analyzed using the digital image correlation technique, particle image velocimetry from which two dimensional, temporally resolved, velocity fields were extracted, from which bulk granular flow and compaction wave propagation were observed and quantified.;By comparing bulk, in situ, velocity field behavior resultant from dart penetration, momentum transfer could be quantified measuring radius of influence or dilatant fluid approximations from which a positive correlation was found across the explored velocity regime, including self similar tendencies. This was, however, not absolute as persistent scatter was observed attributed to granular heterogeneous effects. These were tentatively measured in terms of an irreversible energy amount calculated via energy balance. Grain scale analysis reveals analogous behavior to the bulk response with more chaotic structure, though conclusions were limited by the image processing method to qualitative observations. Even so, critical granular behaviors could be seen, such as densification, pore collapse, and grain fracture from which basic heterogeneous phenomena could be examined. These particularly dominated near nose interactions at high projectile velocities. Resulting empirical models and observations from all approaches provide a baseline from which other studies across may be compared, a metric against which penetrator effectiveness may be evaluated, and an alternative way to validate computationally based analyses. Velocity analysis was further contrasted with piezo-resistive stress gauge data in an effort to pair heterogeneous mechanisms in the bulk stress response. Phenomena such as grain fracture and densification were successfully observed in conjunction with a unique stress signature. Comparing stress responses across the tested velocity spectrum confirm conditional similitude with deviations a low projectile velocities attributed to domination by heterogeneous mechanisms.
机译:随着新颖的原位实验测量技术的出现,现在可以对颗粒介质内的动态事件进行高度解析的定量观察。特别是,现在,高速影像和数字分析不仅可以在一系列事件速度范围内,而且可以在多个长度范围内对沙子的弹道行为进行检查。为了进一步了解粒状介质的动态行为,这些新的实验开发是利用高速摄影技术与压电应力计相结合来观察穿透渥太华沙的飞镖的视觉可触知弹道事件。弹丸的速度从每秒100米到300米不等,具有两个不同的选定视野,可以捕获体积和晶粒度行为。使用数字图像相关技术,粒子图像测速技术分析每个事件,从中提取二维的时间分辨速度场,从中观察并量化散装颗粒流和压实波传播。;通过比较散装,原位,速度可以通过飞镖穿透,动量传递产生的现场行为进行量化,以测量影响半径或膨胀流体近似值,从而在所探索的速度范围内发现正相关,包括自相似趋势。然而,这并不是绝对的,因为观察到持久性散射归因于颗粒异质效应。这些都是通过通过能量平衡计算出的不可逆能量来临时测量的。晶粒度分析揭示了与具有更大混乱结构的整体响应相似的行为,尽管结论被图像处理方法限制于定性观察。即便如此,仍可以看到关键的颗粒行为,例如致密化,孔塌陷和晶粒断裂,从中可以检查基本的异质现象。这些在高速射弹速度下尤其是在鼻子附近相互作用。来自所有方法的所得经验模型和观察结果提供了一个基准,可以将其与其他研究进行比较,可以用来评估穿透效率的度量标准以及一种验证基于计算的分析的替代方法。速度分析与压阻应力计数据进行了进一步对比,目的是在整体应力响应中配对异质机制。结合独特的应力特征,成功地观察到了诸如晶粒断裂和致密化的现象。比较测试速度谱上的应力响应,可以确认条件相似性,且偏差是由异质机制控制的低射弹速度造成的。

著录项

  • 作者

    Sable, Peter Anthony.;

  • 作者单位

    Marquette University.;

  • 授予单位 Marquette University.;
  • 学科 Mechanical engineering.;Energy.;Geophysics.
  • 学位 M.S.
  • 年度 2016
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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