首页> 外文期刊>Combustion Science and Technology >EXPANDING THE STABILITY RANGE OF A LIFTED PROPANE FLAME BY RESONANT ACOUSTIC EXCITATION
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EXPANDING THE STABILITY RANGE OF A LIFTED PROPANE FLAME BY RESONANT ACOUSTIC EXCITATION

机译:共振声激发扩大丙烷丙烷火焰的稳定范围

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摘要

We found that the stability of an unconfined fuel-rich lifted propane-air flame is substantially enhanced and the stability range (in the Reynolds number-equivalence ratio domain) is extended when forced by periodic perturbations at 280 ± 20 Hz and an intensity of 10%. This preferred frequency appeared to be independent of the Reynolds number over the range considered (2500 to 12000), resulting in the corresponding Strouhal number (St) variation from about 1.8 to 0.4. For the stabilization heights below 5 nozzle diameters, the enhanced stability is especially effective in shifting the blow-off limit toward leaner mixtures. From high-repetition particle image velocimetry (PIV) measurements and dynamic mode decomposition (DMD), as well as flame visualization by CH chemiluminescence, it was found that the flame affected the large-scale ring-like vortices by increasing their convection speed and suppressing their pairing and the consequent subharmonic modes of the flame instability. The resonance frequency of 308 Hz (St = 0.82) was also found to be the natural frequency of the unforced propane flame, compared to about 127 Hz (St = 0.38) in the cold jet of the same configuration. Both the forced and unforced flames stabilized on secondary (azimuthal) instabilities associated with the streamwise vortex filaments in the braid between the roll-up vortices, possibly excited by the feedback of heat-release pulsations. This leads to amplification of the first harmonic of the fundamental frequency, which, together with thermal expansion, is believed to cause a more than two-fold increase in the preferred frequency compared with that of a nonreacting jet.
机译:我们发现,当受到280±20 Hz的周期性扰动和强度为10的强迫时,无约束的富燃料提升的丙烷-空气火焰的稳定性大大增强,并且稳定性范围(在雷诺数当量比域中)得到扩展。 %。该优选频率似乎在所考虑的范围(2500至12000)内与雷诺数无关,从而导致相应的斯特劳哈尔数(St)从约1.8到0.4变化。对于低于5个喷嘴直径的稳定高度,增强的稳定性在将喷出极限移向稀薄混合物方面特别有效。从高重复粒子图像测速(PIV)测量和动态模式分解(DMD),以及通过CH化学发光进行火焰可视化,发现火焰通过增加对流速度和抑制火焰影响了大型环形涡旋。它们的配对以及随之而来的火焰不稳定的次谐波模式。还发现,与相同配置的冷喷嘴中的约127 Hz(St = 0.38)相比,共振频率308 Hz(St = 0.82)是丙烷丙烷火焰的固有频率。强制火焰和非强制火焰都稳定在与卷起涡旋之间的编织物中的流向旋涡长丝相关的次级(方位角)不稳定性上,这可能是由于放热脉动的反馈而激发的。这导致基频的一次谐波放大,与热膨胀一起,据信与非反应射流相比,它会使首选频率增加两倍以上。

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  • 来源
    《Combustion Science and Technology》 |2013年第12期|1644-1666|共23页
  • 作者单位

    Kutateladze Institute of Thermophysics, Siberian Branch of the Russian Academy of Sciences, Novosibirsk, Russia,Novosibirsk State University, Novosibirsk, Russia;

    Kutateladze Institute of Thermophysics, Siberian Branch of the Russian Academy of Sciences, Novosibirsk, Russia,Novosibirsk State University, Novosibirsk, Russia;

    Kutateladze Institute of Thermophysics, Siberian Branch of the Russian Academy of Sciences, Novosibirsk, Russia,Novosibirsk State University, Novosibirsk, Russia;

    Novosibirsk State University, Novosibirsk, Russia,Department of Chemical Engineering, Delft University of Technology, Delft, The Netherlands Kutateladze Institute of Thermophysics, Siberian Branch of the RAS, Lavrentyer Avenue, Novosibirsk 630090, Russia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Dynamic mode decomposition; Flame stability; Large-scale vortices; Lifted flame; Particle image velocimetry;

    机译:动态模式分解;火焰稳定性;大型涡旋;火焰升起;粒子图像测速;

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