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The effect of the particle surface and binder properties on the response of polymer bonded explosives at low impact velocities

机译:颗粒表面和粘合剂性能对低冲击速度聚合物粘合炸药响应的影响

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摘要

Polymer bonded explosives are designed to initiate under controlled conditions. However, accidental ignition leading to a deflagration, and even detonation, may occur during manufacturing, handling and transport. Understanding how ignition depends on microstructural features, such as cracks and voids in the particles, and on the adhesive and mechanical properties of the binder through predictive numerical simulations and modeling will help to improve safety. Finite element simulations and experiments of a single high energetic material particle embedded in polymer binders are performed to investigate the effect of the material properties of the binder and the particle surface properties, on damage and temperature at an impact velocity of 10 m/s. Particles with low and high quality surface properties, and two different binders are analyzed. The simulations with the lower stiffness binder do not show a significant increase in temperature after impact. A polymer with higher stiffness induces more particle damage under impact contributing to a larger temperature rise. Furthermore, high quality surface and higher adhesion strength induces larger stresses and increase the temperature rise.
机译:聚合物键合炸药设计用于在受控条件下启动。然而,在制造,处理和运输过程中可能发生导致透气液体甚至爆炸的意外点火。理解点火如何取决于微观结构特征,例如颗粒中的裂缝和空隙,并且通过预测数值模拟和建模将有助于提高安全性的粘合剂和机械性能。进行有限的元素模拟和嵌入聚合物粘合剂中的单个高能材料颗粒的实验,以研究粘合剂和颗粒表面性质的材料特性的效果,抗冲击速度为10m / s的损伤和温度。分析具有低质量和高质量表面性质的颗粒和两种不同的粘合剂。较低刚度粘合剂的模拟不会显示撞击后的温度显着增加。具有较高刚度的聚合物在有助于较大的温度升高的影响下诱导更多的颗粒损伤。此外,高质量的表面和更高的粘合强度诱导较大的应力并增加温度升高。

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