Ruchkina Maria, Ding Pengji, Aldén Marcus, Bood Joakim, Brackmann Christian
Opt Express. 2019 Sep 2;27(18):25656-25669. doi: 10.1364/OE.27.025656.
A model based on rate-equation analysis has been developed for simulation of two-photon-excited laser-induced fluorescence of carbon monoxide (CO) in the Hopfield-Birge band at 230 nm. The model has been compared with experimental fluorescence profiles measured along focused beams provided by lasers emitting nano-, pico-, and femtosecond pulses. Good quantitative agreement was obtained between simulations and experimental data obtained in premixed CH/CH-air flames. For excitation with femtosecond pulses, experimental and simulated fluorescence signals showed quadratic dependence on laser power under conditions of low laser irradiance, whereas different sublinear dependencies were obtained at higher irradiances due to photoionization. Simulations of CO signal versus femtosecond laser linewidth suggest the strongest signal for a transform-limited pulse, which is sufficiently broad spectrally to cover the CO Q-branch absorption spectrum. Altogether, the developed rate-equation model allows for analysis of two-photon excitation fluorescence to arrange suitable diagnostic configurations and retrieve quantitative data for CO as well as other species in combustion, such as atomic oxygen and hydrogen.
基于速率方程分析开发了一个模型,用于模拟在230 nm的霍普菲尔德-比尔格带中一氧化碳(CO)的双光子激发激光诱导荧光。该模型已与沿纳米、皮秒和飞秒脉冲激光提供的聚焦光束测量的实验荧光分布进行了比较。在预混CH/CH-空气火焰中获得的模拟结果与实验数据之间取得了良好的定量一致性。对于飞秒脉冲激发,在低激光辐照度条件下,实验和模拟的荧光信号对激光功率呈二次依赖性,而在较高辐照度下,由于光电离,获得了不同的亚线性依赖性。CO信号与飞秒激光线宽的模拟表明,对于变换极限脉冲,信号最强,该脉冲在光谱上足够宽,能够覆盖CO Q分支吸收光谱。总之,所开发的速率方程模型允许分析双光子激发荧光,以安排合适的诊断配置,并获取CO以及燃烧中的其他物种(如原子氧和氢)的定量数据。