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Measurement of number densities in supersonic flows using a method based on laser-induced acetone fluorescence

机译:使用基于激光诱导的丙酮荧光的方法测量超声速流动中的数密度

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A method that is based on laser-induced fluorescence (LIF) and that involves the use of acetone as a seed can be utilized for measurement of supersonic flows with high temporal and spatial resolutions. In the present study, the feasibility of using this method to measure the number density in supersonic flows at temperatures lower than the atmospheric temperature is investigated. An experiment in which low-temperature conditions are created by supersonic isentropic flows in a convergent–divergent nozzle is carried out. LIF is realized by exciting acetone with the fourth harmonic of a Nd:YAG laser, and the LIF signal is detected by a CCD camera with an image intensifier. In order to theoretically determine the LIF characteristics, a multistep decay model that can be used for temperatures of 300–900 K is extended so that it can be used in the low-temperature regime. The constant included in the model is redetermined by fitting the model to the present experimental data. The LIF calculated by using this extended model is found to agree very well with the experimental data. The model also indicates that the number density measured by the LIF method in the temperature range 170–290 K is insensitive to temperature.
机译:一种基于激光诱导荧光(LIF)的方法,其中涉及使用丙酮作为种子,可以用于测量具有高时空分辨率的超音速流。在本研究中,研究了使用这种方法在低于大气温度的温度下测量超声速流动中的数密度的可行性。进行了一个实验,在该实验中,由收缩-发散喷嘴中的超音速等熵流产生了低温条件。 LIF是通过用Nd:YAG激光的四次谐波激发丙酮来实现的,LIF信号由带有图像增强器的CCD摄像机检测。为了从理论上确定LIF特性,扩展了可用于300-900 K温度的多步衰减模型,以便可以在低温状态下使用。通过将模型拟合到当前的实验数据,可以重新确定模型中包含的常数。发现使用此扩展模型计算的LIF与实验数据非常吻合。该模型还表明,通过LIF方法在170–290 K的温度范围内测量的数密度对温度不敏感。

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