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Experimental Investigation of an Unconfined Swirl-Stabilized Turbulent Premixed Flame

机译:无侧旋稳定湍流预混火焰的实验研究

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A turbulent, swirl-stabilized jet emanating from an unconfined, premixed burner is investigated experimentally by means of optical (OH~* chemiluminescence), acoustic (microphone), and laser-optical measurement techniques (Particle Image Velocimetry) for various swirl intensities. It is shown that even in case of an unconfined swirl flame, combustion-induced vortex breakdown (CIVB) occurs which, on one hand, contributes to the stabilization of the flame and stable combustion due to the increased recirculation zone and, on the other hand, can promote flashback if the recirculation zone travels upstream or is extended upstream, especially for high swirl intensity flows. Another effect associated to CIVB is the generation of vortex breakdown for low Reynolds number, reacting flows which corresponding non-reacting, isothermal flows at the some operating conditions do not create a recirculation zone at all. After crossing a threshold of injected momentum, i.e. Reynolds number, normalized flow fields become Reynolds number independent. It is found that noise emissions from the burner grow with increase in different parameters: equivalence ratio of the injected and burnt mixture, Reynolds number, and number of vanes on the swirler disc. AH three parameters cause an extended area of heat release which is supposed to generate larger pressure oscillations and, hence, more noise.
机译:通过光学(OH〜*化学发光),声学(麦克风)和激光光学测量技术(Particle Image Velocimetry),针对各种旋流强度,对无限制,预混燃烧器发出的湍流,旋流稳定的射流进行了实验研究。结果表明,即使在无限制旋流火焰的情况下,也会发生由燃烧引起的涡旋破裂(CIVB),一方面,由于增加了再循环区域,它有助于火焰的稳定和稳定燃烧,另一方面,它又有助于燃烧的稳定。如果再循环区域向上游行进或向上游延伸,则会引起逆流,特别是对于高旋流强度的流动。与CIVB相关的另一个影响是低雷诺数时涡旋破裂的产生,在某些操作条件下相应的非反应性等温流的反应流根本不会形成再循环区。在超过注入动量的阈值即雷诺数之后,归一化流场变得与雷诺数无关。发现燃烧器的噪声排放随着以下参数的增加而增加:喷射和燃烧的混合物的当量比,雷诺数和旋流盘上的叶片数。所有这三个参数都会导致放热区域扩大,这可能会产生较大的压力振荡,从而产生更大的噪音。

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