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Energetic Material Detonation Characterization: A Laboratory-Scale Approach

机译:高能材料爆轰表征:实验室规模的方法

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摘要

A novel energetic-material detonation and air-blast characterization technique is proposed through the use of a laboratory-scale-based modified "aquarium test." A streak camera is used to record the radial shock wave expansion rate at the energetic material-air interface of spherical laboratory-scale {i.e., gram-range) charges detonated in air. A linear regression fit is applied to the measured streak record data. Using this in conjunction with the conservation laws, material Hugoniots, and two empirically established relationships, a procedure is developed to determine fundamental detonation properties (pressure, ve- locity, particle velocity, and density) and air shock wave properties (pressure, velocity, particle velocity, and density) at the energetic material-air interface. The experimentally determined properties are in good agreement with published values. The theory's applicability is extended using historical experimental test data due to the limited number of experiments able to be performed. Predicted detonation wave and air shock wave properties are in good agreement for a multitude of energetics across various atmospheric conditions.
机译:通过使用基于实验室规模的修改后的“水族馆测试”,提出了一种新颖的高能材料爆轰和鼓风表征技术。条纹照相机用于记录在空气中引爆的球形实验室规模(即克范围)装药的高能材料-空气界面处的径向冲击波扩展率。线性回归拟合应用于测得的条纹记录数据。结合守恒定律,物质Hugoniots和两个经验建立的关系,开发了一种程序来确定基本爆震特性(压力,速度,粒子速度和密度)和空气冲击波特性(压力,速度,高能物质-空气界面处的粒子速度和密度)。实验确定的性质与公布的值高度吻合。由于可以执行的实验数量有限,因此使用历史实验测试数据可以扩展该理论的适用性。预测的爆震波和空气冲击波的特性与在各种大气条件下的大量高能非常吻合。

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