利用爆炸模拟器和冲击管中的受控排气装置定制爆炸波形

IF 5 Q1 ENGINEERING, MULTIDISCIPLINARY Defence Technology(防务技术) Pub Date : 2024-07-01 DOI:10.1016/j.dt.2023.11.026
Edward Chern Jinn Gan , Alex Remennikov , David Ritzel
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引用次数: 0

摘要

任何爆炸模拟设施的一个关键挑战都是尽可能扩大压力-冲量范围,以便与等效的高爆事件相匹配。冲击管和爆破模拟器往往受限于缺乏控制爆破波剖面的有效方法,因此性能范围有限。本文对某些设施采用的一些波形整形技术进行了审查,但这些技术往往需要进行大量几何改动,会无意中造成流动异常,并且/或者仅适用于非常特殊的配置。本文研究的受控排气技术是一种无需对驱动装置或现有几何结构进行大量修改即可调整波形的便捷方法,可广泛应用于现有和未来的爆炸模拟和冲击管设施。利用澳大利亚国家物理爆炸模拟设施的高级爆炸模拟器(冲击管)和计算流体动力学的数值流模拟,对受控排气的使用进行了实验演示。受控排气被确定为减轻爆炸模拟器内再反射波影响的有效方法。这种控制方法还允许调整参数,如调整峰值超压、正相持续时间,以及修改负相的大小和爆炸波的二次冲击。本文最后说明了澳大利亚爆破模拟设施在应用本文介绍的爆破波形定制控制通风时可能扩大的性能范围。
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Blast waveform tailoring using controlled venting in blast simulators and shock tubes

A critical challenge of any blast simulation facility is in producing the widest possible pressure-impulse range for matching against equivalent high-explosive events. Shock tubes and blast simulators are often constrained with the lack of effective ways to control blast wave profiles and as a result have a limited performance range. Some wave shaping techniques employed in some facilities are reviewed but often necessitate extensive geometric modifications, inadvertently cause flow anomalies, and/or are only applicable under very specific configurations. This paper investigates controlled venting as an expedient way for waveforms to be tuned without requiring extensive modifications to the driver or existing geometry and could be widely applied by existing and future blast simulation and shock tube facilities. The use of controlled venting is demonstrated experimentally using the Advanced Blast Simulator (shock tube) at the Australian National Facility of Physical Blast Simulation and via numerical flow simulations with Computational Fluid Dynamics. Controlled venting is determined as an effective method for mitigating the impact of re-reflected waves within the blast simulator. This control method also allows for the adjustment of parameters such as tuning the peak overpressure, the positive phase duration, and modifying the magnitude of the negative phase and the secondary shock of the blast waves. This paper is concluded with an illustration of the potential expanded performance range of the Australian blast simulation facility when controlled venting for blast waveform tailoring as presented in this paper is applied.

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来源期刊
Defence Technology(防务技术)
Defence Technology(防务技术) Mechanical Engineering, Control and Systems Engineering, Industrial and Manufacturing Engineering
CiteScore
8.70
自引率
0.00%
发文量
728
审稿时长
25 days
期刊介绍: Defence Technology, a peer reviewed journal, is published monthly and aims to become the best international academic exchange platform for the research related to defence technology. It publishes original research papers having direct bearing on defence, with a balanced coverage on analytical, experimental, numerical simulation and applied investigations. It covers various disciplines of science, technology and engineering.
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