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首页> 外文期刊>Combustion and Flame >Studies of mean and unsteady flow in a swirled combustor using experiments, acoustic analysis, and large eddy simulations
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Studies of mean and unsteady flow in a swirled combustor using experiments, acoustic analysis, and large eddy simulations

机译:使用实验,声学分析和大型涡流模拟研究旋流燃烧室中的平均流量和非恒定流量

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摘要

The turbulent flow within a complex swirled combustor is studied with compressible large eddy simulation (LES), acoustic analysis, and experiments for both cold and reacting flows. Detailed fields of axial, tangential, and radial velocities (average and RMS) given by LES are compared with experimental values measured by LDV. The unsteady activity is identified using LES and acoustic tools for the whole geometry from inlet (far upstream of the swirler) to the atmosphere (far downstream of the chamber exhaust). Concerning comparisons between experiments and LES, this nose-to-tail procedure removes all ambiguities related to the effects of boundary conditions. Results for the cold flow show that the second acoustic mode at 360 Hz dominates in the plenum while a hydrodynamic mode at 540 Hz due to a processing vortex core (PVC) is found in the combustion chamber. With combustion, the PVC mode is damped and the main mode frequency dominating all unsteady activity is 500 Hz. Acoustic analysis shows that this mode is still the second acoustic mode observed in the cold flow: its frequency shifts from 360 to 500 Hz when combustion is activated. More generally, these results illustrate the power of combined numerical tools (LES and acoustic analysis) to predict mean flow as well as instabilities in combustors.
机译:利用可压缩的大涡模拟(LES),声学分析以及冷流和反应流的实验研究了复杂旋流燃烧室中的湍流。将LES给出的详细的轴向,切线和径向速度场(平均值和RMS)与LDV测量的实验值进行比较。对于从入口(旋流器上游)到大气(室排气下游)的整个几何形状,使用LES和声学工具确定了不稳定的活动。关于实验与LES之间的比较,这种从头到尾的过程消除了与边界条件影响有关的所有歧义。冷流的结果表明,在360 Hz时,第二种声学模式在气室中占主导地位,而在燃烧室中由于加工涡旋核(PVC)而在540 Hz时出现了流体动力学模式。燃烧时,PVC模式被衰减,并且主模式频率主导所有非稳态活动,为500 Hz。声学分析表明,该模式仍然是冷流中观察到的第二种声学模式:当燃烧被激活时,其频率从360 Hz变为500 Hz。更一般而言,这些结果说明了组合数值工具(LES和声学分析)预测燃烧器中的平均流量和不稳定性的能力。

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