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首页> 外文期刊>The Journal of Chemical Physics >Temperature and gas-phase composition measurements in supersonic flows using tunable diode laser absorption spectroscopy: The effect of condensation on the boundary-layer thickness - art. no. 194303
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Temperature and gas-phase composition measurements in supersonic flows using tunable diode laser absorption spectroscopy: The effect of condensation on the boundary-layer thickness - art. no. 194303

机译:使用可调谐二极管激光吸收光谱法测量超声速流动中的温度和气相成分:凝结对边界层厚度的影响-艺术。没有。 194303

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We used a tunable diode laser absorption spectrometer and a static-pressure probe to follow changes in temperature, vapor-phase concentration of D2O, and static pressure during condensation in a supersonic nozzle. Using the measured static-pressure ratio p/p(0) and the mass fraction of the condensate g as inputs to the diabatic flow equations, we determined the area ratio (A/A*)(Wet) and the corresponding centerline temperature of the flow during condensation. From (A/A*)(Wet) we determined the boundary-layer displacement thickness during condensation (delta(#))(Wet). We found that (delta(#))(Wet) first increases relative to the value of delta(#) in a dry expansion (delta(#))(Dry) before becoming distinctly smaller than (delta(#))(Dry) downstream of the condensation region. After correcting the temperature gradient across the boundary layers, the temperature determined from p/p(0) and g agreed with the temperature determined by the laser-absorption measurements within our experimental error (+/- 2 K), except when condensation occurred too close to the throat. The agreement between the two temperature measurements let us draw the following two conclusions. First, the differences in the temperature and mole fraction of D2O determined by the two experimental techniques, first observed in our previous study [P. Paci, Y. Zvinevich, S. Tanimura, B. E. Wyslouzil, M. Zahniser, J. Shorter, D. Nelson, and B. McManus, J. Chem. Phys. 121, 9964 (2004)], can be explained sufficiently by changes in delta(#) caused by the condensation of D2O, except when the phase transition occurs too close to the throat. Second, the extrapolation of the equation, which expresses the temperature dependence of the heat of vaporization of bulk D2O liquid, is a good estimate of the heat of condensation of supercooled D2O down to 210 K. (c) 2005 American Institute of Physics.
机译:我们使用可调二极管激光吸收光谱仪和静压探头来跟踪温度,超声喷嘴中冷凝期间D2O的气相浓度和静压的变化。使用测得的静压比p / p(0)和冷凝水的质量分数g作为绝热流方程的输入,我们确定了面积比(A / A *)(Wet)和相应的中心线温度冷凝过程中流动。根据(A / A *)(Wet),我们确定了冷凝过程中的边界层位移厚度(delta(#))(Wet)。我们发现(delta(#))(Wet)在干膨胀(delta(#))(Dry)中相对于delta(#)的值首先增加,然后变得明显小于(delta(#))(Dry)在冷凝区的下游。校正边界层的温度梯度后,由p / p(0)和g确定的温度与通过激光吸收测量确定的温度在我们的实验误差(+/- 2 K)内一致,除非也发生凝结靠近喉咙。两次温度测量之间的一致性让我们得出以下两个结论。首先,通过两种实验技术确定的D2O温度和摩尔分数的差异,首先在我们先前的研究中观察到[P. Paci,Y.Zvinevich,S.Tanimura,B.E. Wyslouzil,M.Zahniser,J.Shorter,D.Nelson和B.McManus,J.Chem。物理121,9964(2004)],可以充分解释由D2O冷凝引起的delta(#)的变化,除非相变太靠近喉咙。其次,方程的外推表示散装D2O液体的汽化热的温度依赖性,是对过冷的D2O凝结热降低至210 K的一个很好的估计。(c)2005美国物理研究所。

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