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SENSITIVITY OF THE NUMERICAL PREDICTION OF FLOW IN THE LIMOUSINE COMBUSTOR ON THE CHOSEN MESH AND TURBULENT COMBUSTION MODEL

机译:基于选择网和湍流燃烧模型的豪华轿车燃烧器流动数值预测的敏感性

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The objective of this study is to investigate the sensitivity and accuracy of the combustible flow field prediction for the LIMOUSINE combustor with regards to choices in computational mesh and turbulent combustion model. The LIMOUSINE combustor is a partially premixed bluff body stabilized natural gas combustor designed to operate at 40-80 kW and atmospheric pressure and used to study combustion instabilities. The transient simulation of a turbulent combusting flow with the purpose to study thermo-acoustic instabilities is a very time consuming process. For that reason the meshing approach leading to accurate numerical prediction, known sensitivity, and reduced amount of mesh elements is important. Since the numerical dissipation (and dispersion) is highly dependent on, and affected by, the geometrical mesh quality, it is of high importance to control the mesh distribution and element size across the numerical model. Typically, the structural mesh topology allows using much less grid elements compared to the unstructured grid, however an unstructured mesh is favorable for flows in complex geometries. To explore computational stability and accuracy, the numerical dissipation of the cold flow with mixing of fuel and air is studied first in the absence of the combustion process. Thereafter the studies are extended to combustible flows using standard available ANSYS-CFX combustion models. To validate the predicted variable fields of the combustor's transient reactive flows, the numerical results for dynamic pressure and temperature variations, resolved under structured and unstructured mesh conditions, are compared with experimental data. The obtained results show minor dependence on the used mesh in the velocity and pressure profiles of the investigated grids under non-reacting conditions. More significant differences are observed in the mixing behavior of air and fuel flows. Here the numerical dissipation of the (unstructured) tetrahedral mesh topology is higher than in the case of the (structured) hexahedral mesh. For that reason, the combusting flow resolved with the use of the hexahedral mesh presents better agreement with experimental data and demands less computational effort. Finally in the paper the performance of the combustion model for reacting flow as a function of mesh configuration is presented, and the main issues of the applied combustion modeling are reviewed.
机译:本研究的目的是研究豪华轿车燃烧器的可燃流场预测的灵敏度和准确性,关于计算网格和湍流燃烧模型中的选择。豪华轿车燃烧器是一个部分预混的虚空体稳定的天然气燃烧器,旨在以40-80kW和大气压操作并用于研究燃烧不稳定性。湍流燃烧流程的瞬态仿真,目的研究热声稳定性是一个非常耗时的过程。因此,啮合方法导致准确的数值预测,已知的敏感性和缩小量的网状元素是重要的。由于数值耗散(和色散)高度依赖,并且受到几何网格质量的影响,因此在数值模型中控制网格分布和元素大小具有很高的重要性。通常,结构网格拓扑允许与非结构化网格相比使用远更少的网格元件,但是非结构化网格有利于复杂几何形状中的流动。为了探讨计算稳定性和精度,首先在没有燃烧过程的情况下首先研究了燃料和空气混合的冷流的数值耗散。此后,使用标准可用的ANSYS-CFX燃烧模型,研究延伸到可燃流。为了验证燃烧器的瞬态反应流的预测变量字段,与实验数据进行比较,在结构化和非结构化网状条件下进行动态压力和温度变化的数值结果。所得结果表明,在非反应条件下,对所研究的网格的速度和压力谱中使用的网格的次要依赖性。在空气和燃料流动的混合行为中观察到更大的差异。这里(非结构化)四面体网状拓扑的数值耗散高于(结构化)六面向网眼的情况。因此,随着使用HexaheDral网格解决的燃烧流程与实验数据更好地达成了更好的协议,并要求减少计算努力。最后在纸质中,介绍了作为网格配置函数反应流的燃烧模型的性能,并综述了所施加的燃烧建模的主要问题。

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