Application of a new DES model based on Wray-Agarwal turbulence model in flow simulation of a mixed-flow pump

IF 1.2 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Leilei Ji, Haoming Li, Wei Li, Weidong Shi, Shuo Li, Yang Yang, Chensong Zhao, Ramesh K Agarwal
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Abstract

In recent years, it has been demonstrated for many two- and three-dimensional external and internal turbulent flows that the one-equation Wray-Agarwal turbulence model can compute the complex turbulent flow fields with high computational accuracy, excellent computational convergence and efficiency. In this paper, Wray-Agarwal (WA) turbulence model is employed as part of a detached eddy simulation (DES) method to predict the performance of a mixed-flow pump. By comparing the computations with the experimental results, the differences and similarities between the WA-DES model and the Shear Stress Transfer (SST) k-ω model in predicting the internal and external flow characteristics of the pump are analyzed. The results show that both the SST k-ω model and the WA-DES model can reasonably predict the performance of the pump between 0.6 Q and 1.2 Q, where Q is the design flow rate; however, they have their own merits and deficiencies in predicting head and efficiency of the pump at low and high flow rates. For the velocity field in the rotor-stator interaction region, the WA-DES model shows better prediction accuracy since it can accurately predict the large-scale recirculating vortex structure at the inlet of the guide vane. The SST k-ω model over-predicts the separated flow region, which leads to the emergence of a small vortex structure before the backflow region of the pump. Although the turbulent eddy viscosity predicted by the WA-DES model is higher than that of the SST k-ω model and there is small difference in the results for the scale of the tip leakage vortex (TLV) between the two models, the overall simulation results of the WA-DES model for the high turbulent viscosity region and the pressure increase in the impeller are consistent with the SST k-ω model results. The results of this paper demonstrate the potential of WA-DES model for prediction of flows in pumps.
基于 Wray-Agarwal 湍流模型的新型 DES 模型在混流泵流动模拟中的应用
近年来,对许多二维和三维外部和内部湍流的研究表明,一方程 Wray-Agarwal 湍流模型可以计算复杂的湍流流场,且计算精度高、计算收敛性好、效率高。本文将 Wray-Agarwal (WA) 湍流模型作为分离涡模拟 (DES) 方法的一部分,用于预测混流泵的性能。通过比较计算结果和实验结果,分析了 WA-DES 模型和剪切应力传递(SST)k-ω 模型在预测泵的内外流动特性方面的异同。结果表明,SST k-ω 模型和 WA-DES 模型都能合理地预测泵在 0.6 Q 至 1.2 Q(Q 为设计流量)之间的性能,但在预测低流量和高流量时泵的扬程和效率方面各有优缺点。对于转子与定子相互作用区域的速度场,WA-DES 模型可以准确预测导叶入口处的大尺度再循环漩涡结构,因此具有更好的预测精度。SST k-ω 模型对分离流区域的预测过高,导致在泵的回流区域之前出现了一个小的漩涡结构。虽然 WA-DES 模型预测的湍流涡流粘度高于 SST k-ω 模型,且两种模型对叶尖泄漏漩涡(TLV)尺度的结果差异较小,但 WA-DES 模型对高湍流粘度区域和叶轮内压力增加的整体模拟结果与 SST k-ω 模型结果一致。本文的结果证明了 WA-DES 模型在预测泵内流动方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.30
自引率
5.90%
发文量
114
审稿时长
5.4 months
期刊介绍: The Journal of Power and Energy, Part A of the Proceedings of the Institution of Mechanical Engineers, is dedicated to publishing peer-reviewed papers of high scientific quality on all aspects of the technology of energy conversion systems.
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