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Experimental Study of Thermo- Acoustic Instability Triggering in a Staged Liquid Fuel Combustor Using High-Speed OH-PLIF

机译:高速OH-PLIF在分级液体燃料燃烧器中热声失稳触发的实验研究。

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摘要

A staged injector developed by JAXA and fueled with kerosene is studied in a high-pressure combustion experiment. With a stable pilot fuel flow rate, the fuel flow rate in the main stage is progressively increased. A high-speed OH-planar laser-induced fluorescence (PLIF) system is used to record the flame motion at 10,000 fps. In the beginning of the recording, the flame behavior is dominated by relatively low-frequency rotation due to the swirling motion of the flow. These rotational motions then coexist with a thermo-acoustic instability around 475 Hz which increases the amplitude of the pressure fluctuations inside the chamber. Dynamic mode decomposition (DMD) analyses indicate that this instability is associated with a widening of the flame occurring when the pressure fluctuations are the highest, giving the instability a positive feedback. The instability frequency then abruptly switches to 500 Hz, while the mode shape remains the same. This frequency change is studied using time frequency analysis to highlight a change in the feedback mechanism characterized by a modification of the time delay between pressure and heat release fluctuations.
机译:在高压燃烧实验中,研究了由JAXA开发的以煤油为燃料的分阶段喷射器。在稳定的引燃燃料流量的情况下,主阶段的燃料流量逐渐增加。高速OH平面激光诱导荧光(PLIF)系统用于记录10,000 fps的火焰运动。在记录开始时,由于气流的涡旋运动,火焰行为主要由相对低频的旋转所控制。然后,这些旋转运动与475 Hz附近的热声不稳定性共存,这增加了腔室内压力波动的幅度。动态模式分解(DMD)分析表明,这种不稳定性与压力波动最大时发生的火焰扩展有关,从而为不稳定性提供了正反馈。然后,不稳定频率突然切换到500 Hz,而模式形状保持不变。使用时频分析来研究这种频率变化,以突出显示反馈机制的变化,该变化的特征是改变压力和热量释放波动之间的时间延迟。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2018年第8期|081505.1-081505.9|共9页
  • 作者单位

    Japan Aerosp Explorat Agcy JAXA, Aeronaut Technol Directorate, Tokyo 1828522, Japan|Keio Univ, Fac Sci & Technol, Tokyo 2238522, Japan;

    Japan Aerosp Explorat Agcy JAXA, Aeronaut Technol Directorate, Tokyo 1828522, Japan;

    Keio Univ, Fac Sci & Technol, Tokyo 2238522, Japan;

    Keio Univ, Fac Sci & Technol, Tokyo 2238522, Japan;

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