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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Experimental and Numerical Analysis of Gas Premix Turbulent Flames Stabilized in a Swirl Burner With Central Bluff Body
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Experimental and Numerical Analysis of Gas Premix Turbulent Flames Stabilized in a Swirl Burner With Central Bluff Body

机译:旋转燃烧器稳定的气体预混料湍流火焰的实验和数值分析

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Lean premixed gas turbulent flames stabilized in the flow generated by an industrial swirl burner with a central bluff body are experimentally found to behave bistable. This bistable behavior, which can be triggered via a small change in some of the controlling parameters, for example, the bulk equivalence ratio, consists in a rather sudden transition of the flame from completely lifted to well attached to the bluff body. This has impact on combustion dynamics, emissions, and pressure losses. While several experimental investigations exist on this topic, numerical analysis is limited. This work is therefore also of numerical nature, with a twofold scope: (a) simulation and validation with experiments of the bistable flame behavior via computational fluid dynamics (CFD) in the form of large eddy simulation (LES) and (b) analysis of CFD results to shed light on the flame stabilization properties. LES results, in case of the lifted flame, show that the vortex core is sharply precessing at a given frequency. Phase averaging these results at the frequency of precession clearly indicates a counterintuitive and unexpected presence of reverse flow going all the way through the flame apex and the bluff body tip. The counterintuitive presence of a lifted flame is explained here in terms of the phase averaged data, which show that the flame apex is not placed at the center of the spinning reverse flow region. It is instead slightly shifted radially outward where the axial velocity recovers to low positive values of the order of the turbulent burning rate. A simple one-dimensional flame stabilization model is applied to explain this peculiar flame behavior. This model provides first an estimation of the flame radius of curvature in terms of axial velocity and turbulence quantities. This radius is therefore used to determine the total flux of reactants into the flame, given by an axial convection and radial diffusion contributions. Subsequently, the possibility of the flame positioned at the center of the vortex is excluded based on the balance between this flux and the turbulent burning rate. A clear explanation of the mechanism leading to the sudden flame jump has instead not been identified and only some hypotheses are provided.
机译:通过实验发现,在工业漩涡燃烧器产生的流动中稳定的贫气体湍流火焰是通过中央虚拟体产生的。这种可以通过一些控制参数的小变化触发的这种双稳态行为,例如,散装等效率,包括从完全抬起到凹槽主体的火焰的相当突然突然过渡。这对燃烧动态,排放和压力损失产生了影响。虽然本主题存在若干实验研究,但数值分析有限。因此,这项工作也具有数值性质,具有双重的范围:(a)通过计算流体动力学(CFD)以大涡模拟(LES)和(b)分析的形式进行双稳态火焰行为的实验模拟和验证CFD结果在火焰稳定性质上脱光。在提升的火焰的情况下,LES结果表明涡旋芯在给定频率下急剧进行。阶段平均这些结果在Precion的频率下清楚地表明了反向流动的反向流动的逆向流动,通过火焰顶点和虚张声体尖端。本文根据相平均数据说明了提升火焰的逆向存在,这表明火焰顶点没有放置在旋转反向流动区域的中心。相反,径向向外稍微向外移动,其中轴向速度恢复到湍流燃烧速率的顺序的低正值。应用简单的一维火焰稳定模型来解释这种特殊的火焰行为。该模型在轴向速度和湍流量方面提供了首先估计曲率的火焰半径。因此,通过轴向对流和径向扩散贡献给出,该半径用于确定反应物的总通量进入火焰中。随后,基于该磁通与湍流燃烧速率之间的平衡,排除位于涡旋中心处的火焰的可能性。不明确地解释导致突然的火焰跳跃的机制已经没有识别,并且只提供一些假设。

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