应用于复杂隧道环境中跨声速流动的无限制爆炸波定标模型有效性的实验和模拟研究

IF 2.1 Q2 ENGINEERING, CIVIL International Journal of Protective Structures Pub Date : 2022-05-25 DOI:10.1177/20414196221095252
Emily M. Johnson, N. Grahl, M. Langenderfer, David Doucet, Joseph Schott, K. Williams, B. Rutter, Catherine E. Johnson
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引用次数: 3

摘要

自从烈性炸药作为一种工业工具问世以来,人们已经做出了重大努力来了解从炸药到周围环境的能量流动,以最大限度地增加产生的功,同时最大限度地减少破坏性影响。在过去的一个世纪里,人们开发了许多工具,如Hopkinson–Cranz(H-C)定标公式,来定义露天爆炸波的行为。尽管做出了这些努力,但波浪动力学的复杂性使冲击波预测在受限条件下变得困难,因为冲击波与反射表面相互作用,产生复杂的时间压力波形。本文采用了两种方法来更好地了解密闭隧道环境中的爆炸超压传播,并确定与昂贵的全尺寸试验相比,是否可以进行规模试验。使用1:10比例模型和在Ansys Autodyn进行的三维气流模拟预测了时间-压力波形。当采用H-C比例模型时,缩小比例模型模拟与全尺寸爆破模拟的比较产生了自相似的超压波形。实验超压波形表明,缩小规模的模型与模拟之间具有高度相关性。此外,发现峰值超压、持续时间和脉冲值在公差范围内匹配,这对于在未来应用中应用该方法非常有希望。利用这一经验证的关系,模拟模型和缩比试验用于预测全尺寸地下矿井开口中的超压波形,峰值超压、到达时间和脉冲分别在2.12%、2.91%和7.84%以内。本文证明了在有限环境中预测爆破波参数时,缩放爆破模型的有效性。
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An experimental and simulated investigation into the validity of unrestricted blast wave scaling models when applied to transonic flow in complex tunnel environments
Since the inception of high explosives as an industrial tool, significant efforts have been made to understand the flow of energy from an explosive into its surroundings to maximize work produced while minimizing damaging effects. Many tools have been developed over the past century, such as the Hopkinson–Cranz (H-C) Scaling Formula, to define blast wave behavior in open air. Despite these efforts, the complexity of wave dynamics has rendered blast wave prediction difficult under confinement, where the wave interacts with reflective surfaces producing complex time-pressure waveforms. This paper implements two methods to better understand blast overpressure propagation in a confined tunnel environment and establish whether scaled tests can be performed comparatively to costly full-scale experiments. Time–pressure waveforms were predicted using both a 1:10 scaled model and three-dimensional air blast simulations conducted in Ansys Autodyn. A comparison of the reduced scale model simulation with a full-scale blast simulation resulted in self-similar overpressure waveforms when employing the H-C scaling model. Experimental overpressure waveforms showed a high level of correlation between the reduced scale model and simulations. Additionally, peak overpressure, duration, and impulse values were found to match within tolerances that are highly promising for applying this methodology in future applications. Using this validated relationship, the simulated model and reduced scale tests were used to predict an overpressure waveform in a full-scale underground mine opening to within 2.12%, 2.91%, and 7.84% for peak overpressure, time of arrival, and impulse, respectively. This paper demonstrates the effectiveness of scaled, blast models when predicting blast wave parameters in a confined environment.
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来源期刊
CiteScore
4.30
自引率
25.00%
发文量
48
期刊最新文献
Investigating the significance of non-ideal effects in large-scale blast propagation A high explosive blast simulator Pounding response of concrete rods with rough impacting surfaces Airblast observations and near-field modeling of the large surface explosion coupling experiment Development of a fast-running method for prediction of blast propagation in partially confined spaces
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