接近贫爆条件下湍流预混火焰动力学的E-POD研究

IF 1.4 4区 工程技术 Q3 ENGINEERING, MECHANICAL
R. Meloni, N. Chiarizia, P. C. Nassini, A. Andreini
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引用次数: 1

摘要

由于计算能力的不断提高,高保真度计算流体动力学(CFD)模拟的使用如今已成为惯例,尤其是在燃气轮机设计过程中。这种分析的非凡时间和空间细节产生了大量数据集,必须仔细研究这些数据集,以关联不同的数量并获得信息来表征燃烧器设计的行为。已经提出了几种先进的后处理工具;然而,当不同量的相互影响是研究的主要目标时,扩展POD(E-POD)在湍流燃烧应用中具有最大的潜力。本工作研究了E-POD在接近贫吹出的完全预混、涡流稳定的甲烷空气火焰的LES模型中的应用。利用实验室测试案例中两种不同操作条件下的实验数据的验证,该数值模型已被用于收集几个感兴趣的量,以揭示吹扫附近的流动-火焰相互作用。后处理算法已用于强调在不同空气流速下接近消光的两种条件之间的差异。已经发现,当燃烧器以更高的速度运行时,火焰在内部再循环区周围发生循环低频击穿,导致从燃烧器的外部向中心摄入冷产品。尽管在这两种条件下都发现了作用于火焰刷的其他局部效应,但它们主要与具有较低能量含量的高阶相干结构有关。因此,发现它们对火焰稳定性的影响是次要的,因为它们与火焰稳定性的相互作用有限。这项工作表明,E-POD是研究火焰动力学关键特征的有力工具,即使在接近熄火的条件下也是如此,构成了解释燃气轮机燃烧器CFD分析结果的有效算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
E-POD investigations of turbulent premixed flame dynamics approaching lean blow-out conditions
Thanks to the continuous computational power increase, the use of high-fidelity computational fluid dynamics (CFD) simulations is nowadays customary, especially in the gas turbines design process. The extraordinary temporal and spatial detail of such analyses generate large datasets, which must be carefully studied to correlate different quantities and gain information to characterize the behavior of combustor designs. Several advanced post-processing tools have been proposed; however, the Extended-POD (E-POD) holds the greatest potential for turbulent combustion applications when the mutual influence of different quantities is the main goal of the investigation. The present work investigates the application of the E-POD to an LES model of a perfectly-premixed, swirl-stabilized, methane-air flame approaching Lean-Blow-Out. Leveraging the validation against the experimental data at two different operating conditions on a laboratory test case, the numerical model has been used to collect several quantities of interest for shedding light on the flow-flame interaction near the blow-out. The post-processing algorithm has been used to highlight the differences between two conditions approaching the extinction at distinct air-flow velocities. It has been found that, when the burner is operated with a higher velocity, the flame is subjected to a cyclic low-frequency breakdown around the internal recirculation zone, leading to an ingestion of cold products from the external parts of the combustor toward the center. Although other local effects acting on the flame brush have been found in both conditions, they are related mainly to higher order coherent structures with a lower energy content. As a result, their impact onto flame stability is found to be of secondary importance since their limited interaction with flame stabilization. The work shows that E-POD represents a powerful tool for investigating the key features of flame dynamics even at near-blow-out conditions, constituting a valid algorithm for interpreting the results of CFD analyses on gas turbines combustors.
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来源期刊
International Journal of Spray and Combustion Dynamics
International Journal of Spray and Combustion Dynamics THERMODYNAMICS-ENGINEERING, MECHANICAL
CiteScore
2.20
自引率
12.50%
发文量
21
审稿时长
>12 weeks
期刊介绍: International Journal of Spray and Combustion Dynamics is a peer-reviewed open access journal on fundamental and applied research in combustion and spray dynamics. Fundamental topics include advances in understanding unsteady combustion, combustion instability and noise, flame-acoustic interaction and its active and passive control, duct acoustics...
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