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Formation and flame-induced suppression of the precessing vortex core in a swirl combustor: Experiments and linear stability analysis

机译:旋流燃烧器中进动旋涡芯的形成和火焰诱导抑制:实验和线性稳定性分析

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The precessing vortex core (PVC) is a coherent flow structure that is often encountered in swirling flows in gas turbine (GT) combustors. In some swirl combustors, it has been observed that a PVC is present under non-reacting conditions but disappears in the corresponding reacting cases. Since numerous studies have shown that a PVC has strong effects on the flame stabilization, it is desirable to understand the formation and suppression of PVCs in GT combustors. The present work experimentally studies the flow field in a GT model combustor at atmospheric pressure. Whereas all non-reacting conditions and detached M-shaped flames exhibit a PVC, the PVC is suppressed for attached V-shaped flames. A local linear stability analysis is then applied to the measured time-averaged velocity and density fields. For the cases where a PVC appeared in the experiment, the analysis shows a global hydrodynamic instability that manifests in a single-helical mode with its wavemaker located at the combustor inlet. The frequency of the global mode is in excellent agreement with the measured oscillation frequency and the growth rate is approximately zero, indicating the marginally stable limit-cycle. For the attached V-flame without PVC, strong radial density/temperature gradients are present at the inlet, which are shown to suppress the global instability. The interplay between the PVC and the flame is further investigated by considering a bi-stable case with intermittent transitions between V- and M-flame. The flame and flow transients are investigated experimentally via simultaneous highspeed PIV and OH-PLIF. The experiments reveal a sequence of events wherein the PVC forms prior to the transition of the flame shape. The results demonstrate the essential role of the PVC in the flame stabilization, and thereby the importance of a hydrodynamic stability analysis in the design of a swirl combustor. (C) 2015 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:进动涡流芯(PVC)是一种连贯的流动结构,在燃气轮机(GT)燃烧室的旋流中经常遇到。在一些旋流燃烧器中,已经观察到PVC在非反应条件下存在,但在相应的反应情况下消失。由于大量研究表明,PVC对火焰稳定有很强的影响,因此希望了解GT燃烧器中PVC的形成和抑制。本工作通过实验研究了GT型燃烧器在大气压下的流场。尽管所有非反应条件和分离的M形火焰均具有PVC,但抑制了PVC附着V形火焰的可能性。然后将局部线性稳定性分析应用于测得的时间平均速度和密度场。对于在实验中出现PVC的情况,分析表明整体流体动力学不稳定性表现为单螺旋模式,其波状波位于燃烧器进口处。全局模式的频率与测得的振荡频率非常吻合,并且增长率大约为零,表明边缘稳定的极限周期。对于没有PVC的V型火焰,入口处存在很强的径向密度/温度梯度,这显示出抑制了整体不稳定性。通过考虑在V型火焰和M型火焰之间存在间歇过渡的双稳态情况,进一步研究了PVC与火焰之间的相互作用。通过同时高速PIV和OH-PLIF对火焰和流动瞬态进行了实验研究。实验揭示了一系列事件,其中PVC在火焰形状转变之前形成。结果证明了PVC在火焰稳定中的重要作用,从而证明了在旋流燃烧器设计中进行流体力学稳定性分析的重要性。 (C)2015年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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