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Multiparameter Flowfield Measurements in High-Pressure, Cryogenic Environments Using Femtosecond Lasers

机译:飞秒激光在高压,低温环境中的多参数流场测量

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Femtosecond laser electronic excitation tagging (FLEET) and Rayleigh scattering (RS) from a femtosecond laser are demonstrated in the NASA Langley 0.3-m Transonic Cryogenic Tunnel (TCT). The measured signals from these techniques are examined for their thermodynamic dependencies in pure nitrogen. The FLEET signal intensity and signal lifetimes are found to scale primarily with the gas density, as does the RS signal. Several models are developed, which capture these physical behaviors. Notably, the FLEET and Rayleigh scattering intensities scale linearly with the flow density, while the FLEET signal decay rates are a more complex function of the thermodynamic state of the gas. The measurement of various flow properties are demonstrated using these techniques. While density was directly measured from the signal intensities and FLEET signal lifetime, temperature and pressure were measured using the simultaneous FLEET velocity measurements while assuming the flow had a constant total enthalpy. Measurements of density, temperature, and pressure from the FLEET signal are made with accuracies as high as 5.3 percent, 0.62 percent, and 6.2 percent, respectively, while precisions were approximately 10 percent, 0.26 percent, and 11 percent for these same quantities. Similar measurements of density from Rayleigh scattering showed an overall accuracy of 3.5 percent and a precision of 10.2 percent over a limited temperature range (T > 195 K). These measurements suggest a high degree of utility at using the femtosecond-laser based diagnostics for making multiparameter measurements in high-pressure, cryogenic environments such as large-scale TCT facilities.
机译:飞秒激光电子激发标记(FLEET)和飞秒激光的瑞利散射(RS)在NASA Langley 0.3米跨音速低温隧道(TCT)中得到了证明。检查这些技术的测量信号在纯氮气中的热力学依赖性。发现FLEET信号强度和信号寿命主要与气体密度成比例,RS信号也是如此。开发了几种模型,它们捕获了这些物理行为。值得注意的是,FLEET和瑞利散射强度与流量密度成线性比例,而FLEET信号衰减率则是气体热力学状态的更复杂函数。使用这些技术证明了各种流动特性的测量。虽然从信号强度和FLEET信号寿命直接测量密度,但同时使用FLEET速度测量值来测量温度和压力,同时假设流量具有恒定的总焓。通过FLEET信号进行的密度,温度和压力测量的准确度分别高达5.3%,0.62%和6.2%,而相同数量的精度分别约为10%,0.26%和11%。在有限的温度范围内(T> 195 K),类似的瑞利散射密度测量结果显示总体精度为3.5%,精度为10.2%。这些测量表明在基于飞秒激光的诊断程序在高压低温环境(例如大型TCT设备)中进行多参数测量时,具有很高的实用性。

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