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Photolytic-interference-free, femtosecond, two-photon laser-induced fluorescence imaging of atomic oxygen in flames

机译:飞秒无光飞秒双光子激光诱导火焰中原子氧的荧光成像

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摘要

paves the way for two-dimensional imaging of O at kHz data rates. Such measurements can provide critical data for validating complex, multidimensional turbulent-combustion models as well as for investigating flame dynamics in practical combustion devices. Ultrashort-pulse lasers are well suited for nonlinear diagnostic techniques such as two-photon laserinduced fluorescence (TPLIF) because the signals generated scale as the laser intensity squared. Furthermore, the broad spectral bandwidths associated with nearly Fourier-transform-limited ultrashort pulses effectively contribute to efficient nonlinear excitation by coupling through a large number of in-phase photon pairs, thereby producing strong fluorescence signals. Additionally, femtosecond (fs)-duration amplified laser systems typically operate at 1-10 kHz repetition rates, enabling high-repetition-rate imaging in dynamic environments. In previous experiments, we have demonstrated utilization of fs pulses for kilohertz (kHz)-rate, interference-free imaging of atomic hydrogen (H) in flames. In the present study, we investigate the utilization of fs-duration pulses to photolytic-interference-free TPLIF imaging of atomic oxygen (O). In TPLIF of O, photodissociation of vibrationally excited carbon dioxide (CO2) is known to be the prominent interference that produces additional O atoms in the medium. We have found that through the use of fs excitation, such interferences can be virtually eliminated in premixed laminar methane flames, which paves the way for two-dimensional imaging of O at kHz data rates. Such measurements can provide critical data for validating complex, multidimensional turbulent-combustion models as well as for investigating flame dynamics in practical combustion devices.
机译:为以kHz数据速率进行O的二维成像铺平了道路。这样的测量可以提供关键数据,以验证复杂的多维湍流燃烧模型以及研究实际燃烧设备中的火焰动力学。超短脉冲激光器非常适合于非线性诊断技术,例如双光子激光诱导的荧光(TPLIF),因为信号的产生与激光强度的平方成比例。此外,与近傅立叶变换限制的超短脉冲相关的宽光谱带宽通过通过大量同相光子对耦合而有效地促进了有效的非线性激发,从而产生了强荧光信号。此外,飞秒(fs)持续时间放大的激光系统通常以1-10 kHz的重复频率运行,从而可以在动态环境中实现高重复率成像。在以前的实验中,我们已经证明了fs脉冲用于千赫(kHz)速率,火焰中原子氢(H)的无干扰成像。在本研究中,我们调查了fs持续时间脉冲对原子氧(O)的无光解干扰TPLIF成像的利用。在O的TPLIF中,振动激发的二氧化碳(CO2)的光解离是引起介质中产生其他O原子的主要干扰。我们已经发现,通过使用fs激发,可以在预混合层流甲烷火焰中消除这种干扰,这为以kHz数据速率对O进行二维成像铺平了道路。这样的测量可以提供关键数据,以验证复杂的多维湍流燃烧模型以及研究实际燃烧设备中的火焰动力学。

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  • 来源
    《Applied physics 》 |2016年第2期| 26.1-26.7| 共7页
  • 作者单位

    Spectral Energies LLC, 5100 Springfield St,Suite 301, Dayton, OH 45431 USA|Texas A&M Univ, Dept Mech Engn, 3123 TAMU, College Stn, TX 77843 USA;

    Spectral Energies LLC, 5100 Springfield St,Suite 301, Dayton, OH 45431 USA;

    Spectral Energies LLC, 5100 Springfield St,Suite 301, Dayton, OH 45431 USA;

    US Air Force, Res Lab, Aerosp Syst Directorate, Wright Patterson AFB, OH 45433 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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