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首页> 外文期刊>International Journal of Heat and Mass Transfer >Numerical analysis of an unsteady natural cavitating flow around an axisymmetric projectile under various free-stream temperature conditions
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Numerical analysis of an unsteady natural cavitating flow around an axisymmetric projectile under various free-stream temperature conditions

机译:各种自由流温度条件下轴对称弹丸周围不稳定自然空化流动的数值分析

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摘要

Here, an unsteady natural cavitating flow around an axisymmetric projectile is computationally studied using a homogeneous multiphase approach. The numerical models used are based on a dual-time preconditioning method, an interface-capturing scheme, and a modified cavitation model, to capture unsteady cavitation structure behaviors. Full compressibility of two phases and an energy equation are used to determine the effects of temperature on a cavitating flow. First, the experimental data were validated at a cavitation number of σ = 0.435. Both quantitatively and qualitatively good agreements were achieved, including the evolution of the cavity shape, cavity length, and cavity thickness. Then, the key characteristics of an unsteady cavitation structure regarding the cavity growth, re-entrant jet, cavity shedding, and collapse were analyzed. In particular, the mechanism of the re-entrant jet inside the cavity, causing the periodic cavity shedding, was explored. Furthermore, detailed mechanisms of cavity shedding with periodic cavity-vortex-pressure interaction behaviors were analyzed. Finally, the influences of free-stream temperature on the cavitation structure behaviors were carefully investigated. It was found that both the cavity length and thickness increased with the free-stream temperature under the atmospheric pressure condition. The most sensitive effects occurred when the free-stream temperature approached its boiling point. In case of the same reference cavitation number and Reynolds number, the cavity shape tended to be mushier with increasing water temperature.
机译:这里,使用均匀的多相方法来计算轴对称弹丸周围的不稳定自然空化流。使用的数值模型基于双时预处理方法,接口捕获方案和修改的空化模型,以捕获不稳定的空化结构行为。两个相的完全可压缩性和能量方程用于确定温度对空化流的影响。首先,在σ= 0.435的空化数处验证实验数据。实现了定量和定性良好的协议,包括腔形状,腔长和腔厚度的演变。然后,分析了关于腔生长,再参与者,空腔脱落和塌陷的不稳定空化结构的关键特性。特别地,探讨了腔内的再参与者射流的机制,导致周期性腔脱落。此外,分析了具有周期性腔 - 涡流 - 压力相互作用行为的腔脱落的详细机制。最后,仔细研究了自由流温度对空化结构行为的影响。发现腔体长度和厚度都随着大气压条件下的自由流温度而增加。自由流温度接近其沸点时,最敏感的效果发生。在相同的参考空化数和雷诺数的情况下,腔体形状倾向于增加水温的蘑菇。

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