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PROPER ORTHOGONAL DECOMPOSITION ANALYSIS OF NON-SWIRLING TURBULENT STRATIFIED AND PREMIXED METHANE/AIR FLAMES

机译:非旋流湍流分层/预混合甲烷/火焰的正确正交分解分析

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This paper reports proper orthogonal decomposition (POD) analyses for the velocity fields measured in a test burner. The Cambridge/Sandia Stratified Swirl Burner has been used in various studies as a benchmark for high resolution scalar and velocity measurements, for comparison with numerical model prediction. Flow field data was collected for a series of bluff-body stabilized premixed and stratified methane/air flames at turbulent, globally lean conditions (Φ = 0.75) using high speed stereoscopic particle image velocimetry (HS-SPIV). In this paper, a modal analysis was performed to identify the large scale flow structures and their impact on the flame dynamics. The high speed PTV system was operated at 3 kHz to acquire a series of 4096 sequential flow field images both for reactive and non-reactive cases, sufficient to follow the large-scale spatial and temporal evolution of flame and flow dynamics. The POD analysis allows identification of vortical structures, created by the bluff body, and in the shear layers surrounding the stabilization point. In addition, the analysis reveals that dominant structures are a strong function of the mixture stratification in the flow field. The dominant energetic modes of reactive and non-reactive flows are very different, as the expansion of gases and the high temperatures alter the unstable modes and their survival in the flow.
机译:本文报告了在测试燃烧器中测得的速度场的正确正交分解(POD)分析。剑桥/桑迪亚分层旋流燃烧器已在各种研究中用作高分辨率标量和速度测量的基准,以与数值模型预测进行比较。使用高速立体粒子图像测速仪(HS-SPIV),在湍流,全球稀薄条件下(Φ= 0.75),收集了一系列钝体稳定的预混和分层甲烷/空气火焰的流场数据。在本文中,进行了模态分析以识别大型流动结构及其对火焰动力学的影响。高速PTV系统以3 kHz的频率运行,以获取针对反应性和非反应性情况的一系列4096个顺序流场图像,足以跟踪火焰和流动动力学的大规模时空演化。 POD分析可以识别钝体产生的涡旋结构,以及在稳定点周围的剪切层中。此外,分析表明,主导结构是流场中混合物分层的重要功能。反应性和非反应性流的主要能量模式非常不同,因为气体的膨胀和高温会改变不稳定模式及其在流中的生存。

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