首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >EFFECT OF TURBULENCE MODEL ON THE PREDICTION OF PERFORMANCE AND SPAN-WISE MIXING IN HIGH-SPEED HIGHLY-LOADED MULTI-STAGE AXIAL-FLOW COMPRESSOR
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EFFECT OF TURBULENCE MODEL ON THE PREDICTION OF PERFORMANCE AND SPAN-WISE MIXING IN HIGH-SPEED HIGHLY-LOADED MULTI-STAGE AXIAL-FLOW COMPRESSOR

机译:湍流模型对高速高负荷多级轴流压气机性能和超细混合预测的影响

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Despite significant advancements in computational power and various numerical modeling in past decades, flow simulation of a multi-stage axial-flow compressor is still one of the most active areas of research, for it is the critical component in engine performance and operability, and there are so many elements that need to be looked into to predicting correct matching of the stages and accurate flow distribution inside the machine. Modeling unsteadiness, both deterministic and random types, and real geometries are among the most important features to be considered in such prediction. The authors have conducted in their previous studies a series of unsteady RANS (URANS) simulations of a 6.5-stage high-speed highly-loaded axial-flow compressor, and explored many unsteady effects as well as effects of real geometries such as Variable Stator Vane (VSV) clearance and inter-stage seal leakage flow on the compressor performance. However, all the analyses failed to predict correct stage matching, total pressure and temperature radial profiles, or mass-flow with adequate accuracies. In the present study, an Improved Delayed Detached Eddy Simulation (IDDES) with SST k-omega model is applied to the simulation of the same compressor configuration at aerodynamic design point. Fifth-order WENO scheme is employed for improved spatial accuracy to suppress significant increase in mesh size. Total number of mesh points are over 400 million for 1/10th sector model. Computations are ensemble averaged for 20 sector passage. Computed overall performance and flow field are compared with the compressor rig test data. The predictions of inter-stage total temperature radial profiles are noticeably improved over the URANS with the same mesh, discretization scheme and eddy turbulence model. Good comparison with the rig data indicates the current simulation is properly capturing the span-wise mixing phenomena. Unsteady flow field are compared between IDDES and URANS to locate the cause for the enhanced mixing. It is shown that components of Reynolds stress responsible for radial diffusion and anisotropic features are intensified in the tip leakage vortex at the rotor exit for the IDDES.
机译:尽管在过去的几十年中,计算能力和各种数值模型取得了显着进步,但多级轴流式压缩机的流动模拟仍是研究中最活跃的领域之一,因为它是发动机性能和可操作性的关键组成部分,因此,预测阶段的正确匹配和机器内部的精确流量分布需要考虑的要素太多。对确定性和随机类型以及模型的不稳定性进行建模是此类预测中要考虑的最重要特征。作者在之前的研究中对6.5级高速高负荷轴流压缩机进行了一系列非稳态RANS(URANS)模拟,并探索了许多非稳态影响以及诸如可变定子叶片等实际几何形状的影响。 (VSV)间隙和级间密封泄漏流量对压缩机性能的影响。但是,所有分析都未能预测出正确的级匹配,总压力和温度径向分布或具有足够精度的质量流量。在本研究中,具有SSTk-ω模型的改进的延迟分离涡模拟(IDDES)被应用于在空气动力学设计点对相同压缩机配置的模拟。采用五阶WENO方案可提高空间精度,以抑制网格尺寸的显着增加。 1/10扇区模型的网格点总数超过4亿。计算是对20个扇区通过的合计平均值。将计算出的总体性能和流场与压缩机装置的测试数据进行比较。与相同网格,离散化方案和涡流模型相同的URANS,阶段间总温度径向分布的预测显着提高。与钻机数据的良好比较表明,当前的模拟正确捕获了跨度混合现象。比较IDDES和URANS之间的不稳定流场,以找出导致混合增强的原因。结果表明,IDDES转子出口处的尖端泄漏涡中雷诺应力的分量引起径向扩散和各向异性特征的加剧。

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