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Hybrid femtosecond/picosecond coherent anti-Stokes Raman scattering for gas-phase temperature measurements

机译:飞秒/皮秒相干相干反斯托克斯拉曼散射,用于气相温度测量

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摘要

Hybrid femtosecond/picosecond coherent anti-Stokes Raman scattering (fs/ps CARS) is employed for quantitative gas-phase temperature measurements in combustion processes and heated flows. In this approach, ultrafast 100-fs laser pulses are used to induce vibrational and rotational transitions in N2 and O2, while a third spectrally narrowed picosecond pulse is used to probe the molecular response. Temporal suppression of the nonresonant contribution and elimination of collisional effects are achieved by delay of the probe pulse, while sufficient spectral resolution is maintained for frequency-domain detection and thermometry. A theoretical framework is developed to model experimental spectra by phenomenologically describing the temporal evolution of the vibrational and rotational wavepackets as a function of temperature and pressure. Interference-free, single-shot vibrational fs/ps CARS thermometry is demonstrated at 1-kHz from 1400-2400 K in a H2-air flame, with accuracy better than 3%. A time-asymmetric exponential pulse shape is introduced to optimize nonresonant suppression with a 103 reduction at a probe delay of 0.31 ps. Low-temperature single-shot thermometry (300-700 K) with better than 1.5% accuracy is demonstrated using a fully degenerate rotational fs/ps CARS scheme, and the influence of collision energy transfer on thermometry error is quantified at atmospheric pressure. Interference-free thermometry, without nonresonant contributions and collision-induced error, is demonstrated for the first time using rotational fs/ps CARS at room temperature and pressures from 1-15 atm. Finally, the temporal and spectral resolution of fs/ps CARS is exploited for transition-resolved time-domain measurements of N2 and O2 self-broadened S-branch Raman linewidths at pressures of 1-20 atm.
机译:飞秒/皮秒相干相干反斯托克斯拉曼散射(fs / ps CARS)用于燃烧过程和加热流中的定量气相温度测量。在这种方法中,使用超快的100 fs激光脉冲在N2和O2中引起振动和旋转跃迁,而在光谱上变窄的第三个皮秒脉冲用于探测分子响应。通过探测脉冲的延迟,可以暂时抑制非共振影响并消除碰撞影响,同时为频域检测和测温保持足够的光谱分辨率。通过现象学描述振动和旋转波包随时间变化的温度和压力,建立了理论框架来对实验光谱建模。演示了在H2空气火焰中从1400-2400 K在1-kHz下无干扰,单次振动的fs / ps CARS测温仪,其精度优于3%。引入时间非对称指数脉冲形状以优化非谐振抑制,并在0.31 ps的探测延迟下降低103。使用完全退化的旋转fs / ps CARS方案证明了精度优于1.5%的低温单次测温(300-700 K),并且在大气压下量化了碰撞能量传递对测温误差的影响。首次在室温和1-15 atm的压力下使用旋转fs / ps CARS证明了无干扰的测温法,没有非共振影响和碰撞引起的误差。最后,将fs / ps CARS的时间和光谱分辨率用于在1-20 atm的压力下对N2和O2自扩展S分支拉曼线宽的跃迁解析时域测量。

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    Miller, Joseph Daniel;

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  • 年度 2012
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  • 正文语种 en
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