The influence of finite rupture times on flow dynamics within micro-shock tubes

Q4 Engineering
D. Adair, Abilkaiyr Mukhambetiyar, M. Jaeger, M. Malin
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引用次数: 0

Abstract

The importance of micro-shock tubes is growing in line with recent developments of microscale technology for products like micro-heat engines and micro-propulsion systems. The flow dynamics within a micro-shock tube are different from those found in a macro shock tube, and knowledge of these dynamics is not as yet well established, as the flow within these tubes includes extra physics namely rarefaction and complex effects due to viscosity. Studies have recently been made with assumed initial condition of instantaneous diaphragm rupture producing centred shock and expansion waves. However, for a real case, the diaphragm ruptures over a finite time causing a period of partial rupture and this will change the shock characteristics. The work here reports on a series of axisymmetric numerical simulations carried out to calculate the influence of an initial finite-time diaphragm rupture. Rarefaction effects were taken into account by the use of Maxwell’s slip velocity and temperature conditions. Use of an initial finite-time diaphragm rupture boundary condition causes the forming of a non-centred shock wave downstream of the diaphragm, and, the shock propagation distance is considerably reduced by use of the finite-time rupture process.
有限破裂时间对微激波管内流动动力学的影响
随着微热发动机和微推进系统等产品的微尺度技术的发展,微激波管的重要性日益增加。微激波管内的流动动力学与宏观激波管内的流动动力学不同,这些动力学的知识还没有很好地建立起来,因为这些管内的流动包括额外的物理现象,即稀薄和由粘度引起的复杂效应。最近的研究假设了膜片瞬时破裂产生中心激波和膨胀波的初始条件。然而,在实际情况下,隔膜在有限的时间内破裂,导致部分破裂,这将改变冲击特性。这里的工作报告了一系列轴对称数值模拟,以计算初始有限时间隔膜破裂的影响。利用麦克斯韦滑移速度和温度条件考虑了稀疏效应。使用初始有限时间隔膜破裂边界条件会导致隔膜下游形成非中心激波,并且通过使用有限时间破裂过程大大缩短了冲击传播距离。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.10
自引率
0.00%
发文量
24
审稿时长
33 weeks
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