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Strategies for nitric oxide laser-induced-fluorescence in high-pressure combustion systems.

机译:高压燃烧系统中一氧化氮激光诱导荧光的策略。

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Practical diagnostic strategies for detection of temperature and nitric oxide (NO) in high pressure (p60bar) combustion systems using Laser-Induced-Fluorescence (LIF) of nitric oxide are investigated. NO-LIF, when applied to elevated pressures, suffers from a decrease of signal due to pressure broadening and attenuation of the propagating laser beam/fluorescence signals. In addition, overlapping of neighboring excitation lines and interference from LIF of other species (mainly O2 and CO2) can significantly influence the overall signal. The main purpose of this study is to investigate NO-LIF strategies which minimize the impact of these complications or allow for correction of their effects. A comprehensive study of NO-LIF in a laboratory high-pressure flame was carried out for various flame stoichiometries, pressures and excitation wavelengths to develop optimized excitation and detection strategies for high-pressure applications. Four main issues are addressed in this study. First, optimized excitation strategies are investigated for high-pressure applications in the A2Sigma+ - X2pi (0,0), (0,1) and (0,2) bands of NO. Second, CO2-LIF is identified as a major source of interference in the detection of NO-LIF in high-pressure combustion systems involving hydrocarbon chemistry. Third, an accurate multi-line thermometry technique for steady, high-pressure flames is proposed by fitting wavelength-scanned NO-LIF with computational simulations. Finally, measurements optimizing the detection strategies of 2-D NO-LIF imaging in high-pressure flames are reported. The discussion and demonstrations reported in this study provide a practical guideline for application of instantaneous 1-D or 2-D NO-LIF imaging in high-pressure combustion systems.
机译:研究了使用一氧化氮的激光诱导荧光(LIF)检测高压(p <60bar)燃烧系统中温度和一氧化氮(NO)的实用诊断策略。当施加高压时,NO-LIF由于压力变宽和传播的激光束/荧光信号的衰减而遭受信号下降的困扰。另外,相邻激励线的重叠以及来自其他物种(主要是O2和CO2)的LIF的干扰会显着影响整个信号。这项研究的主要目的是研究NO-LIF策略,以最大程度地减少这些并发症的影响或纠正其影响。对实验室高压火焰中的NO-LIF进行了全面的研究,研究了各种火焰化学计量,压力和激发波长,从而开发了用于高压应用的优化激发和检测策略。这项研究解决了四个主要问题。首先,针对NO的A2Sigma +-X2pi(0,0),(0,1)和(0,2)频段的高压应用,研究了优化的激励策略。其次,在涉及碳氢化合物化学的高压燃烧系统中,CO2-LIF被认为是检测NO-LIF的主要干扰源。第三,通过将波长扫描的NO-LIF与计算仿真拟合,提出了一种用于稳定高压火焰的精确多线测温技术。最后,报告了优化高压火焰中二维NO-LIF成像检测策略的测量方法。本研究报告的讨论和演示为在高压燃烧系统中应用瞬时一维或二维NO-LIF成像提供了实用指南。

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