反应流和等离子体的超快速诊断

A. Patnaik, H. Stauffer, P. Hsu, N. Jiang, P. Wrzesinski, S. Roy
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引用次数: 0

摘要

光学测量技术已经成为详细研究反应流和等离子体的化学和物理的有力工具。基于连续波和低重复率ns脉冲激光的传统燃烧诊断继续主导基础研究和应用;然而,超短脉冲(飞秒)激光器和高重复频率(爆发模式)激光器在科学和工程方面的革命性进步正在推动现有诊断技术的进步,并使新的测量方法得以发展。飞秒激光系统提供的超短脉冲提供了巨大的峰值功率-允许产生具有广谱覆盖的非线性信号-以及研究化学动力学和动力学的前所未有的时间分辨率。超短脉冲放大器以及ns和ps脉冲爆发模式激光器的高脉冲重复率为湍流时间序列和燃烧不稳定性的研究提供了以前无法实现的数据采集带宽。更重要的是,从这些先进的激光系统发出的高脉冲能量提供了将测量能力从点方向测量扩展到多维(线[1D],平面[2D],甚至体积[3D])成像的能力。基于超快激光的光谱测量的快速增长是由以下需求推动的:1)时间分辨的单次测量;2)多物种的同时检测;3)空间分辨的测量;4)无干扰的测量(碰撞展宽、光解离解等);5)更高维度的测量(线、面或体积)。本文将综述几种基于超快激光的光谱技术及其显著发展,以满足上述五种需求中的一种或全部,用于测量反应流和等离子体中的温度和关键化学物质浓度。光学测量技术已经成为详细研究反应流和等离子体的化学和物理的有力工具。基于连续波和低重复率ns脉冲激光的传统燃烧诊断继续主导基础研究和应用;然而,超短脉冲(飞秒)激光器和高重复频率(爆发模式)激光器在科学和工程方面的革命性进步正在推动现有诊断技术的进步,并使新的测量方法得以发展。飞秒激光系统提供的超短脉冲提供了巨大的峰值功率-允许产生具有广谱覆盖的非线性信号-以及研究化学动力学和动力学的前所未有的时间分辨率。超短脉冲放大器以及ns和ps脉冲爆发模式激光器的高脉冲重复率允许以前无法实现的数据采集带宽,用于湍流时间结构的研究。
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Ultrafast diagnostics of reacting flows and plasmas
Optical measurement techniques have become powerful tools for the detailed study of the chemistry and physics of reacting flows, and plasmas. Traditional combustion diagnostics based on continuous-wave and low-repetition-rate ns- pulsed lasers continue to dominate fundamental studies and applications; however, revolutionary advances in the science and engineering of both ultrashort-pulse (femtosecond) lasers and high-repetition-rate (burst-mode) lasers are driving the advancement of existing diagnostic techniques and enabling the development of new measurement approaches. The ultrashort pulses afforded by femtosecond laser systems provide tremendous peak powers—allowing nonlinear signal generation with broad spectral coverage—and unprecedented temporal resolution for studying chemical kinetics and dynamics. The high pulse-repetition rates of ultrashort-pulse amplifiers as well as ns- and ps-pulse burst-mode lasers allow previously unachievable data-acquisition bandwidths for the study of turbulent time series and combustion instabilities. More importantly, the high pulse energies emanating from these advanced laser systems afford the ability to extend measurement capabilities beyond point-wise measurements to multi-dimensional (line [1D], planar [2D], or even volumetric [3D]) imaging. The rapid growth of ultrafast laser-based spectroscopic measurements has been fueled by the need to achieve the following: 1) time-resolved single-shot measurements 2) simultaneous detection of multiple species, 3) spatially resolved measurements, 4) interference-free measurements (collisional broadening, photolytic dissociation, etc.), and 5) higher dimensionality (line, planar, or volumetric). Several state-of-art ultrafast-laser–based spectroscopic techniques and their remarkable developments will be reviewed in meeting one or all of the above five needs for measurements of temperature and key chemical species concentrations in reacting flows and plasmas.Optical measurement techniques have become powerful tools for the detailed study of the chemistry and physics of reacting flows, and plasmas. Traditional combustion diagnostics based on continuous-wave and low-repetition-rate ns- pulsed lasers continue to dominate fundamental studies and applications; however, revolutionary advances in the science and engineering of both ultrashort-pulse (femtosecond) lasers and high-repetition-rate (burst-mode) lasers are driving the advancement of existing diagnostic techniques and enabling the development of new measurement approaches. The ultrashort pulses afforded by femtosecond laser systems provide tremendous peak powers—allowing nonlinear signal generation with broad spectral coverage—and unprecedented temporal resolution for studying chemical kinetics and dynamics. The high pulse-repetition rates of ultrashort-pulse amplifiers as well as ns- and ps-pulse burst-mode lasers allow previously unachievable data-acquisition bandwidths for the study of turbulent time se...
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