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基于雷诺应力模型的高精度分离涡模拟方法
引用本文:王圣业,王光学,董义道,邓小刚. 基于雷诺应力模型的高精度分离涡模拟方法[J]. 物理学报, 2017, 66(18): 184701-184701. DOI: 10.7498/aps.66.184701
作者姓名:王圣业  王光学  董义道  邓小刚
作者单位:1. 国防科学技术大学航天科学与工程学院, 长沙 410073;2. 中山大学物理学院, 广州 510275
基金项目:国防科学技术大学科研计划(批准号:ZDYYJCYJ20140101)资助的课题.
摘    要:基于Speziale-Sarkar-Gatski/Launder-Reece-Rodi(SSG/LRR)-ω雷诺应力模型发展了一类分离涡模拟方法,结合高精度加权紧致非线性格式在典型翼型及三角翼算例中进行了验证,并和传统基于线性涡粘模型的分离涡模拟方法进行了对比.结果表明:基于SSG/LRR-ω模型的分离涡模拟方法,提高了原雷诺应力模型对非定常分离湍流的模拟能力;同时相比于传统基于线性涡粘模型的分离涡模拟方法,尤其是在翼型最大升力迎角和三角翼涡破裂迎角附近,该方法在平均气动力预测的准确度、分离湍流模拟的精细度等方面更加优秀.

关 键 词:湍流流动  雷诺应力模型  分离涡模拟  加权紧致非线性格式
收稿时间:2017-03-20

High-order detached-eddy simulation method based on a Reynolds-stress background model
Wang Sheng-Ye,Wang Guang-Xue,Dong Yi-Dao,Deng Xiao-Gang. High-order detached-eddy simulation method based on a Reynolds-stress background model[J]. Acta Physica Sinica, 2017, 66(18): 184701-184701. DOI: 10.7498/aps.66.184701
Authors:Wang Sheng-Ye  Wang Guang-Xue  Dong Yi-Dao  Deng Xiao-Gang
Affiliation:1. College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, China;2. School of Physics, Sun Yat-sen University, Guangzhou 510275, China
Abstract:Referring to the construction of shear stress transport-improved delayed detached-eddy simulation (SST-IDDES) method, a variant of IDDES method based on the Speziale-Sarkar-Gatski/Launder-Reece-Rodi (SSG/LRR)-ω Reynolds-stress model (RSM) as Reynolds-averaged Navier-Stokes (RANS) background model, is proposed. Through combining high-order weighted compact nonlinear scheme (WCNS), the SSG/LRR-IDDES method is applied to three aeronautic cases and compared with traditional methods:SST-unsteady Reynolds-averaged Navier-Stokes (URANS), SSG/LRR-URANS, and SST-IDDES. To verify the SSG/LRR-IDDES method in simulating airfoil stalled flow, NACA0012 airfoil is adopted separately at attack angles of 17°, 45° and 60°. At the attack angle of 17°, SST-URANS, SSG/LRR-URANS, and SST-IDDES methods each predict a higher lift coefficient than the experimental data, while the SSG/LRR-IDDES method obtains a better lift coefficient result and a higher fidelity vortical flow structure. It indicates that the RSM can improve the prediction of RANS-mode for pressure-induced separations on airfoil surfaces in detached-eddy simulation. At the attack angles of 45° and 60°, the SSG/LRR-IDDES method captures the massively separated flow with three-dimensional vortical structures and obtains a good result, which is the same as that from the traditional SST-IDDES method. To indicate the improvement of the SSG/LRR-IDDES method in simulating airfoil trailing edge separation, NACA4412 airfoil is adopted. At the attack angle of 12° (maximum lift), the trailing edge separation is mainly induced by pressure gradient. The SSG/LRR-IDDES method can predict the separation process reasonably and obtains a good lift coefficient and location of separation compared with experimental results. However, none of other methods can predict trailing edge separation. It confirms that when RSM is adopted as RANS background model in detached-eddy simulation, the ability to predict pressure-induced separation on airfoil surface is improved. For further verifying the SSG/LRR-IDDES method for simulating three-dimensional separated flow, blunt-edge deltawing at the attack angle of 24.6° is adopted. At this attack angle, the primary vortex will break, which is difficult to predict by using the SST-URANS method. For the SSG/LRR-URANS method, it predicts the vortex breakdown successfully, but the breakdown process does not show any significant unsteady characteristic. The SST-IDDES and the SSG/LRR-IDDES methods both predict a significant unsteady vortex breakdown. But in terms of the accuracy of surface pressure and the fidelity of unsteady flow, the result obtained by the SSG/LRR-IDDES method is better than by the SST-IDDES method.
Keywords:turbulence flows  Reynolds stress model  detached eddy simulation  weighted compact nonlinear scheme
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