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Shock-Tube Boundary-Layer Effects on Reflected-Shock Conditions with and Without CO2

机译:在有和没有CO2的情况下,反射波条件下的冲击管边界层效应

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摘要

The disturbances created by boundary layers behind incident shock waves are minimal but are multiplied in the postreflected-shock region and contribute to nonideal behaviors in this region. In this study, a boundary-layer model was used to confirm the link between predicted incident-shock boundary-layer growth and postreflected-shock pressure rise in shock tubes for a wide variety of nonreacting mixture compositions and experimental conditions. The results show that boundary-layer growth and, consequently, postreflected-shock pressure rise are strongly affected by the incident-shock Mach number and specific heat ratio gamma of the mixture. In this study, mixtures of Ar, N-2, and 0.21N(2)/CO2 were examined at experimental conditions of approximately 1400-1800 K at an average pressure of 1.73 atm. Although each mixture (with differing gamma) experienced the same range of postreflected-shock conditions (T-5 and P-5), the Mach number span for each mixture was different. This Mach number byproduct of matchingT(5) and P-5 for each mixture was a major cause of differences in boundary-layer growth behavior and resulting postreflected-shock pressure rise, with the CO2-laden mixture producing the largest postshock pressure (and temperature) rise. Additionally, the measured pressure rise for the high-CO2-content mixtures was an order of magnitude greater than for mixtures of pure Ar at the same experimental (T-5 and P-5) conditions.
机译:由入射冲击波后面的边界层产生的扰动极小,但在反射后的电击区域中倍增,并导致该区域的非理想行为。在这项研究中,边界层模型用于确认各种非反应混合物组成和实验条件下,预测的冲击波边界层增长与激波管中反射后冲击波压力升高之间的联系。结果表明,混合物的入射冲击马赫数和比热比γ极大地影响了边界层的生长以及因此导致的反射后冲击的压力升高。在这项研究中,在平均压力为1.73 atm的约1400-1800 K的实验条件下检查了Ar,N-2和0.21N(2)/ CO2的混合物。尽管每种混合物(具有不同的伽玛值)经历的反射后震荡条件范围相同(T-5和P-5),但每种混合物的马赫数跨度不同。每个混合物的匹配T(5)和P-5的马赫数副产物是边界层生长行为差异和导致反射后震荡压力升高的主要原因,其中充满CO2的混合物产生最大的震后压力(和温度) )上升。此外,在相同的实验条件(T-5和P-5)下,高CO2含量混合物的测得压力升高比纯Ar混合物的压力升高大一个数量级。

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  • 来源
    《AIAA Journal》 |2017年第3期|902-912|共11页
  • 作者单位

    Texas A&M Univ, Mech Engn, 3123 TAMU, College Stn, TX 77843 USA;

    Texas A&M Univ, Mech Engn, 3123 TAMU, College Stn, TX 77843 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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