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Highly-resolved les and PIV analysis of isothermal turbulent opposed jets for combustion applications

机译:燃烧应用的等温湍流对置射流的高分辨率和PIV分析

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Turbulent opposed jet (TOJ) burners are an interesting test case for fundamental combustion research and a good benchmark for the available modelling approaches. However, these opposed jet flames strongly depend on the turbulence generation inside the nozzle, which is usually achieved through a perforated plate upstream of the nozzle exit. The present work investigates the flow from these perforated plates and the subsequent turbulence generation in great detail. We present results from highly-resolved large eddy simulations (LES) of the in-nozzle flow in turbulent opposed jets alongside state-of-the-art particle image velocimetry (PIV) at standard and high repetition rates taken inside a glass nozzle. The in-nozzle PIV data provides the LES inflow conditions with unprecedented detail, which are used to follow the initial jet development behaviour known from PIV, before jet coalescence, turbulence production and decay further downstream in the nozzles are successfully predicted. In regions where the PIV experiment suffers from inherent limitations like reflections and the velocity bias, the LES data is available to still obtain a detailed picture of the flow. The sensitivity of the simulations to various physical and numerical parameters is discussed in detail. Results from LES and PIV are compared qualitatively and quantitatively in terms of first and second moments of velocity, temporal autocorrelations, and energy density spectra. Significant deviations are found in the frequency (20%) and strength of vortex shedding from the inlet plane only, whereas the qualitative and quantitative agreement between simulation and experiment is otherwise excellent throughout, implying that a successful large eddy simulation of a turbulent opposed jet can be performed in a domain that includes the perforated plates.
机译:湍流对置射流(TOJ)燃烧器是基础燃烧研究的有趣测试案例,也是可用建模方法的良好基准。但是,这些相反的喷射火焰在很大程度上取决于喷嘴内部的湍流产生,这通常是通过喷嘴出口上游的多孔板实现的。本工作非常详细地研究了这些多孔板的流动以及随后产生的湍流。我们介绍了在标准和高重复率下在玻璃喷嘴内对湍流相对喷嘴的喷嘴内流动进行高分辨率解析的大涡流模拟(LES)以及最新的粒子图像测速(PIV)的结果。喷嘴内PIV数据为LES流入条件提供了前所未有的详细信息,可用于遵循PIV已知的初始喷嘴发展行为,然后才能成功预测喷嘴的聚结,湍流产生和进一步向下游的衰减。在PIV实验受到固有限制(例如反射和速度偏差)的区域中,LES数据仍然可以用来获得流动的详细图片。详细讨论了仿真对各种物理和数值参数的敏感性。 LES和PIV的结果在速度的一阶和二阶矩,时间自相关和能量密度谱方面进行了定性和定量比较。仅在进口平面上涡流的频率和强度上发现了显着偏差(20%),而仿真和实验之间的定性和定量一致性在整个过程中都是极好的,这意味着成功地对湍流对流喷射进行了大涡流仿真在包括多孔板的区域中执行。

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