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Proper Orthogonal Decomposition for Flame Dynamics of Microwave Plasma Assisted Swirl Stabilized Premixed flames

机译:微波等离子体辅助旋流稳定预混火焰的火焰动力学正确正交分解

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The primary aim of this work is to establish the effectiveness of microwave plasma discharges to improve combustor flame dynamics and stability through minimizing heat release fluctuations. A continuous, volumetric, direct coupled, non-equilibrium, atmospheric microwave plasma discharge was applied to a swirl stabilized premixed methane-air flame to minimize combustion instabilities. Proper Orthogonal Decomposition (POD) is used to post-process data and extract information on flame dynamics that are usually lost through classical statistical approaches. POD analysis carried out on OH planar laser-induced fluorescence (PLIF) images reveal that even at coupled plasma powers corresponding to less than 5% of the thermal power output, significant improvement in mean energy content of flames (~23%) was observed. The corresponding decrease in heat release fluctuations resulted in improved combustor flame dynamics and flame stability, which was found to be in good agreement with acoustic pressure measurements. In the presence of plasma discharge, an effective decoupling between the flame oscillations and the fluid unsteadiness was established due to the differences in flame stabilization mechanisms resulting in up to 47% reduction in RMS pressure fluctuations. Thus, effective fluid-acoustic decoupling in addition to the accelerated combustion chemistry due to the non-thermal effects of plasma led to significantly improved combustor dynamics namely, decreased heat release and pressure fluctuations.
机译:这项工作的主要目的是通过最小化热量释放波动来建立微波等离子体放电的有效性,从而改善燃烧室的火焰动力学和稳定性。将连续的,体积的,直接耦合的,非平衡的大气微波等离子体放电应用于涡旋稳定的预混合甲烷-空气火焰,以最大程度地减少燃烧不稳定性。适当的正交分解(POD)用于对数据进行后处理,并提取通常通过经典统计方法会丢失的火焰动力学信息。在OH平面激光诱导的荧光(PLIF)图像上进行的POD分析表明,即使在耦合等离子体功率下(相当于热功率输出的5%以下),也可以观察到火焰平均能量含量显着提高(〜23%)。相应地,放热波动的减少导致燃烧器火焰动力学和火焰稳定性的改善,这与声压测量结果非常吻合。在存在等离子放电的情况下,由于火焰稳定机制的差异,火焰振荡与流体不稳定之间建立了有效的解耦,从而使RMS压力波动降低了47%。因此,除了由于等离子体的非热效应而导致的加速燃烧化学作用之外,有效的流体声解耦还导致燃烧器动力学得到显着改善,即,热量释放和压力波动减小。

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