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用于高压低温风洞的氮气中无种子测速法,第2部分:皮秒激光标记

Unseeded Velocimetry in Nitrogen for High-Pressure Cryogenic Wind Tunnels, Part 2: Picosecond-Laser Tagging.

作者信息

Burns Ross A, Danehy Paul M, Jiang Naibo, Slipchenko Mikhail N, Felver Josef, Roy Sukesh

机构信息

National Institute of Aerospace, Hampton, VA, USA, 23666.

NASA Langley Research Center, Hampton, VA, USA, 23681.

出版信息

Meas Sci Technol. 2018 Oct 12;29(11). doi: 10.1088/1361-6501/aade15.

Abstract

Picosecond laser electronic excitation tagging (PLEET) is implemented in a large-scale wind tunnel for the first time. High-speed, unseeded velocimetry is performed in the NASA Langley 0.3-m Transonic Cryogenic Tunnel; repetition rates up to 25 kHz are tested. Velocity measurements are assessed for accuracy and precision. Measurement errors vary in the range of 0.6-1.2%, while the instrument precision is found to lie between 1.2 m/s and 2 m/s and exhibits little variation over the full operating range of the facility. An examination of the signal intensity reveals little to no thermodynamic dependence, and the signal lifetimes exhibit an inverse dependence on both pressure and temperature. The PLEET signal is demonstrated to be largely unaffected by buoyancy despite the large temperature rise. The velocity dynamic range of the measurements is found to be a factor of at least 200 in these experiments with the capacity to measure much higher velocities as well. The spatial resolution of the velocity measurements is found to lie between 2 and 2.7 mm, and the maximum frequency response is 12.5 kHz with the ability to resolve up to 50 kHz with the current measurement system. Overall measurement uncertainties in the streamwise velocity are found to lie between 4% and 4.8% for high to low velocities, while the uncertainty in the transverse velocity is less than 6 m/s. The measurement uncertainties are found to be dominated by systematic errors in the calibration procedure, which could be improved in future experiments.

摘要

皮秒激光电子激发标记(PLEET)首次在大型风洞中得以实现。在美国国家航空航天局兰利0.3米跨声速低温风洞中进行了高速、无粒子测速;测试了高达25千赫兹的重复率。对速度测量结果的准确性和精度进行了评估。测量误差在0.6%至1.2%的范围内变化,而仪器精度在1.2米/秒至2米/秒之间,并且在该设施的整个运行范围内变化很小。对信号强度的检查表明几乎没有热动力学依赖性,并且信号寿命对压力和温度均呈反比依赖性。尽管温度大幅上升,但已证明PLEET信号在很大程度上不受浮力影响。在这些实验中,测量的速度动态范围至少为200倍,并且也有能力测量更高的速度。发现速度测量的空间分辨率在2至2.7毫米之间,最大频率响应为12.5千赫兹,当前测量系统有能力分辨高达50千赫兹的信号。对于高到低速度,流向速度的总体测量不确定度在4%至4.8%之间,而横向速度的不确定度小于6米/秒。发现测量不确定度主要由校准程序中的系统误差主导,这在未来的实验中可以得到改进。

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引用本文的文献

本文引用的文献

1
Unseeded Velocity Measurements Around a Transonic Airfoil Using Femtosecond-Laser Tagging.
AIAA J. 2017 Dec;55(12):4142-4154. doi: 10.2514/1.J056154. Epub 2017 Oct 31.
2
Unseeded Velocimetry in Nitrogen for High-Pressure, Cryogenic Wind Tunnels, Part 1: Femtosecond-Laser Tagging.
Meas Sci Technol. 2018 Nov;29(11). doi: 10.1088/1361-6501/aade1b. Epub 2018 Oct 12.
3
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Opt Lett. 2017 Jan 15;42(2):239-242. doi: 10.1364/OL.42.000239.
4
Femtosecond laser electronic excitation tagging for quantitative velocity imaging in air.
Appl Opt. 2011 Sep 10;50(26):5158-62. doi: 10.1364/AO.50.005158.
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Velocity measurements by vibrational tagging and fluorescent probing of oxygen.
Opt Lett. 1987 Nov 1;12(11):861-3. doi: 10.1364/ol.12.000861.

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