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The Development and Characterization of Femtosecond Laser Velocimetry Methods

机译:飞秒激光测速方法的发展与特征

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摘要

Measurements in high speed wind tunnels and reactive testing facilities require remote, non-perturbing, high-fidelity diagnostic tools. Femtosecond Laser Electronic Excitation Tagging (FLEET) is a recent addition to ultrafast laser diagnostics for fluid dynamic measurements. FLEET is uniquely suited for making difficult measurements: in its most basic form, it requires only a nitrogen-containing flow, a laser system, focusing optics and a gateable camera. The further development of FLEET as a velocimetry tool is presented in this work.;Three aspects of FLEET velocimetry are examined in this work. The first extends FLEET from primarily nitrogen and air environments to flows with argon, oxygen, helium, carbon dioxide, methane, water vapor and freon mixtures. Time-resolved and time-integrated emission are captured to study the temporal behavior of the signal, and spectra are gathered to study molecular and atomic species present in the dynamics associated with FLEET. A zero-dimensional kinetics model is developed to study excited species decay following femtosecond laser excitation in argon-nitrogen and oxygen-nitrogen mixtures. Argon gas, which is frequently used in arcjet facilities, shock tubes, and plasma experiments, enhances the signal and lifetime of FLEET emission when combined with nitrogen. Oxygen has a non-monotonic quenching effect on the signal when it is combined with nitrogen gas.;Secondly, experiments are performed in well-developed subsonic turbulent flow and acoustic measurements are made of the laser pulse to determine the effects of laser heating on the gas. Turbulence statistics are computed for different sets of optical parameters and compared to expected values. Strong laser focusing and high pulse energies appear to perturb the flow enough to mask small features, and weak magnification also introduced artificial correlations into the flow.;Lastly, outcomes from the previous two efforts are synergized to develop FLEET as a tool for near wall measurements, specifically to resolve the viscous sublayer in supersonic flows for skin friction characterization. To minimize flow perturbation, tagging is performed using less than a millijoule of energy per pulse at 400 nm, and magnification and gain are chosen to avoid intensity saturation or cutting off any of the measured region.
机译:高速风洞和反应性测试设施中的测量需要远程,无干扰的高保真诊断工具。飞秒激光电子激励标签(FLEET)是超快激光诊断技术中流体流体测量的最新功能。 FLEET特别适合于进行困难的测量:以最基本的形式,它仅需要一个含氮气流,一个激光系统,聚焦光学器件和一个可门控的摄像头。本文介绍了FLEET作为测速工具的进一步发展。;本文研究了FLEET测速的三个方面。第一种将FLEET从主要的氮气和空气环境扩展到与氩气,氧气,氦气,二氧化碳,甲烷,水蒸气和氟利昂混合物的流动。捕获时间分辨和时间积分发射以研究信号的时间行为,并收集光谱以研究与FLEET相关的动力学中存在的分子和原子种类。建立了零维动力学模型,以研究飞秒激光在氩-氮和氧-氮混合物中激发后的激发物种衰减。与氩气结合使用时,氩气通常用于电弧喷射设备,激波管和等离子实验中,可提高FLEET发射的信号和寿命。氧气与氮气混合后对信号具有非单调猝灭作用。其次,在发达的亚音速湍流中进行实验,并对激光脉冲进行声学测量,以确定激光加热对激光的影响。加油站。针对不同的光学参数集计算湍流统计量,并将其与期望值进行比较。强激光聚焦和高脉冲能量似乎足以扰动流动以掩盖小特征,而弱放大倍率也将人为相关性引入了流动中;最后,前两项工作的成果被协同发展为将FLEET用作近壁测量的工具,特别是要解决超音速流动中的粘性子层的皮肤摩擦特性。为了最大程度地减少流动扰动,在400 nm处每脉冲使用不到一毫焦耳的能量进行标记,并选择放大倍率和增益以避免强度饱和或切断任何被测区域。

著录项

  • 作者

    Zhang, Yibin.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Aerospace engineering.;Applied physics.;Fluid mechanics.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 185 p.
  • 总页数 185
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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