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Dynamic fracture and hot-spot modeling in energetic composites

机译:充满活力复合材料的动态骨折和热点建模

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摘要

Defects such as cracks, pores, and particle-matrix interface debonding affect the sensitivity of energetic materials by reducing the time-to-ignition and the threshold pressure to initiate an explosion. Frictional sliding of preexisting cracks is considered to be one of the most important causes of localized heating. Therefore, understanding the dynamic fracture of crystalline energetic materials is of extreme importance to assess the reliability and safety of polymer-bonded explosives. Phase field damage model simulations, based on the regularization of the crack surface as a diffuse delta function, are used to describe crack propagation in cyclotetramethylene-tetranitramine crystals embedded in a Sylgard matrix. A thermal transport model that includes heat generation by friction at crack interfaces is coupled to the solution of crack propagation. 2D and 3D dynamic compression simulations are performed with different boundary velocities and initial distributions of cracks and interface defects to understand their effect on crack propagation and heat generation. It is found that, at an impact velocity of 400 m/s, localized damage at the particle-binder interface is of key importance and that the sample reaches temperatures high enough to create a hot-spot that will lead to ignition. At an impact velocity of 10 m/s, preexisting cracks advanced inside the particle, but the increase of temperature will not cause ignition. Published by AIP Publishing.
机译:诸如裂缝,孔隙和粒子 - 矩阵界面剥离的缺陷通过减少爆炸时间和阈值压力来影响能量材料的灵敏度。预先存在的裂缝的摩擦滑动被认为是局部加热的最重要原因之一。因此,了解结晶能量材料的动态骨折是极度重要的,以评估聚合物粘结炸药的可靠性和安全性。基于裂缝表面作为漫射Δ功能的裂缝表面的正则化的相域损伤模拟用于描述在Sylgard基质中嵌入的环四甲基四硝基晶体中的裂纹繁殖。包括在裂纹接口处通过摩擦产生热量的热传输模型耦合到裂纹传播的溶液。使用不同的边界速度和裂缝和界面缺陷的不同边界速度和初始分布来进行2D和3D动态压缩模拟,以了解它们对裂纹传播和发热的影响。结果发现,在400米/秒的冲击速度下,粒子粘合剂界面的局部损坏具有重要性,并且样品达到足够高的温度以产生将导致点火的热点。在10米/秒的冲击速度下,粒子内先进的裂缝,但温度的增加不会引起点火。通过AIP发布发布。

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  • 来源
    《Journal of Applied Physics》 |2018年第6期|065101.1-065101.12|共12页
  • 作者单位

    Purdue Univ Sch Mech Engn W Lafayette IN 47907 USA;

    Purdue Univ Sch Mech Engn W Lafayette IN 47907 USA;

    Purdue Univ Sch Mech Engn W Lafayette IN 47907 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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