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Laboratory-Scale Method for Estimating Explosive Performance from Laser-Induced Shock Waves

机译:从激光诱发的冲击波估算爆炸性能的实验室规模方法

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摘要

A new laboratory-scale method for predicting explosive performance (e.g., detonation velocity and pressure) based on milligram quantities of material is demonstrated. This technique is based on schlieren imaging of the shock wave generated in air by the formation of a laser-induced plasma on the surface of an energetic material residue. The shock wave from each laser ablation event is tracked for more than 100 mu s using a high-speed camera. A suite of conventional energetic materials including DNAN, TNT, HNS, TATB, NTO, PETN, RDX, HMX, and CL-20 was used to develop calibration curves relating the characteristic shock velocity for each energetic material to several detonation parameters. A strong linear correlation between the laser-induced shock velocity and the measured performance from full-scale detonation testing has been observed. The Laser-induced Air Shock from Energetic Materials (LASEM) method was validated using nitrocellulose, FOX-7, nano-RDX, three military formulations, and three novel high-nitrogen explosives currently under development. This method is a potential screening tool for the development of new energetic materials and formulations prior to larger-scale detonative testing. The main advantages are the small quantity of material required (a few milligrams or less per laser shot), the ease with which hundreds of measurements per day can be obtained, and the ability to estimate explosive performance without detonating the material (reducing cost and safety requirements).
机译:演示了一种新的实验室规模方法,该方法可根据毫克量的材料预测爆炸性能(例如,爆炸速度和爆炸压力)。该技术基于通过在高能材料残留物表面上形成激光诱导的等离子体而在空气中产生的冲击波进行schlieren成像。使用高速摄像机跟踪每次激光烧蚀事件产生的冲击波持续100毫秒以上。使用包括DNAN,TNT,HNS,TATB,NTO,PETN,RDX,HMX和CL-20在内的一系列常规高能材料来开发校准曲线,以将每种高能材料的特征冲击速度与几个爆震参数相关联。已经观察到激光诱导的冲击速度与全尺寸爆震测试的测量性能之间存在很强的线性关系。使用硝化纤维素,FOX-7,nano-RDX,三种军用配方和三种目前正在开发的新型高氮炸药对激光诱导的高能材料产生的空气冲击(LASEM)方法进行了验证。该方法是在大规模爆炸试验之前开发新的高能材料和配方的潜在筛选工具。主要优点是所需的材料量少(每次激光照射只需几毫克或更少),每天可轻松进行数百次测量,并且能够在不引爆材料的情况下估算爆炸性能(降低成本和安全性)要求)。

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