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Advanced Laser Diagnostics Development for the Characterization of Gaseous High Speed Flows

机译:先进的激光诊断技术开发,用于表征气态高速流

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摘要

The study of high-speed flows represents a challenging problem in the fluid dynamics field due to the presence of chemical reactions and non-equilibrium effects. Hypersonic flights, where speeds reach Mach 5 and above, are particularly influenced by these effects, resulting in a direct impact on the flow and consequently on the aerodynamic performance of a vehicle traveling at these speeds. The study of hypersonic flow conditions requires the experimental capability of determining local temperatures, pressures and velocities using non-intrusive techniques. Furthermore, the simultaneous measurement of two or more variables in a complex flow boosts the amount of information that is obtained since valuable correlations can be established.This research includes the design, construction and characterization of a hypersonic flow apparatus explicitly intended as a tool for advanced laser diagnostics development. This apparatus is characterized by its pulsed operation mode that translates into a significant reduction in mass flow rates and can be operated for long periods at Mach numbers ranging from 2.8 to 6.2. The flow conditions during the uniform flow time interval of each pulse vary by less than 1%, generating a flow of sufficient quality for quantitative measurements.The development of a laser diagnostic technique, the VENOM technique, which is a non-intrusive method to provide simultaneous 2-D measurements of the mean and instantaneous fluctuations in two-component velocity and temperature is also presented. This technique represents the first single diagnostic capable of instantaneous two-component velocimetry and thermometry in a gaseous flow field by combining two Nitric Oxide Planar Laser Induced Fluorescence methods: two-component Molecular Tagging Velocimetry and two-line thermometry, employing the nascent NO(v"=1) arising from the NO2 photodissociation as a molecular tracer. The VENOM technique is expected to be not only applicable to cold high-speed flows, which is the focus of the present work, but also to combustion and other reactive or high-enthalpy flow fields.
机译:由于存在化学反应和非平衡效应,对高速流动的研究在流体动力学领域代表了一个具有挑战性的问题。速度达到5马赫或更高的高超音速飞行特别受这些影响,从而直接影响气流,进而直接影响以这些速度行驶的车辆的空气动力性能。高超声速流动条件的研究需要使用非侵入性技术确定局部温度,压力和速度的实验能力。此外,由于可以建立有价值的相关性,同时测量复杂流中的两个或多个变量会增加获得的信息量。这项研究包括明确设计用于先进工具的高超声速流动设备的设计,构造和特性激光诊断学的发展。该设备的特点是其脉冲运行模式,该模式可显着降低质量流量,并且可以在2.8至6.2的马赫数范围内长时间运行。每个脉冲的均匀流动时间间隔内的流动条件变化小于1%,从而产生了足以进行定量测量的质量流量。激光诊断技术VENOM技术的发展是一种非侵入性方法,可提供还介绍了同时进行二维测量的两分量速度和温度的平均和瞬时波动。该技术代表了第一项能够在气态流场中进行瞬时双组分测速和测温的单一诊断方法,该方法结合了两种一氧化氮平面激光诱导荧光方法:两组分分子标记测速和两线测温,并采用了新生的NO(v “ = 1)是由NO2光解离作为分子示踪剂引起的。预期VENOM技术不仅适用于冷高速流动(这是当前工作的重点),而且还适用于燃烧和其他反应性或高浓度的焓流场。

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    Sanchez-Gonzalez Rodrigo;

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  • 年度 2012
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  • 正文语种 en_US
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