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Large eddy simulation of compressible turbulent channel and annular pipe flows with system and wall rotations

机译:系统和壁面旋转对可压缩湍流通道和环形管流动的大涡模拟

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摘要

The compressible filtered Navier-Stokes equations were solved using a second order accurate finite volume method with low Mach number preconditioning. A dynamic subgrid-scale stress model accounted for the subgrid-scale turbulence. The study focused on the effects of buoyancy and rotation on the structure of turbulence and transport processes including heat transfer. Several different physical arrangements were studied as outlined below.;The effects of buoyancy were first studied in a vertical channel using large eddy simulation (LES). The walls were maintained at constant temperatures, one heated and the other cooled. Results showed that aiding and opposing buoyancy forces emerge near the heated and cooled walls, respectively. In the aiding flow, the turbulent intensities and heat transfer were suppressed at large values of Grashof number. In the opposing flow, however, turbulence was enhanced with increased velocity fluctuations.;Another buoyancy study considered turbulent flow in a vertically oriented annulus. Isoflux wall boundary conditions with low and high heating were imposed on the inner wall while the outer wall was adiabatic. The results showed that the strong heating and buoyancy force caused distortions of the flow structure resulting in reduction of turbulent intensities, shear stress, and turbulent heat flux, particularly near the heated wall.;Flow in an annular pipe with and without an outer wall rotation about its axis was first investigated at moderate Reynolds numbers. When the outer pipe wall was rotated, a significant reduction of turbulent kinetic energy was realized near the rotating wall.;Secondly, a large eddy simulation has been performed to investigate the effect of swirl on the heat and momentum transfer in an annular pipe flow with a rotating inner wall. The simulations indicated that the Nusselt number and the wall friction coefficient increased with increasing rotation speed of the wall. It was also observed that the axial velocity profile became flattened and turbulent intensities were enhanced due to swirl.;As a part of the study of rotation effects, large eddy simulation of a rotating ribbed channel flow with heat transfer was investigated. The rotation axis was parallel to the spanwise direction of the parallel plate channel. Uniform heat flux was applied to the channel for two rates of rotation. The results showed that near the stable (leading) side, the turbulent intensities and heat transfer were suppressed, but turbulence was enhanced with increasing shear stress and turbulent kinetic energy near the unstable (trailing) side.
机译:使用具有低马赫数预处理的二阶精确有限体积法求解了可压缩滤波的Navier-Stokes方程。动态的亚网格尺度应力模型解释了亚网格尺度的湍流。该研究的重点是浮力和旋转对湍流和包括热传递在内的运输过程结构的影响。研究了以下几种不同的物理布置:浮力的影响首先使用大涡模拟(LES)在垂直通道中进行研究。壁保持恒定的温度,一个加热,另一个冷却。结果表明,在加热壁和冷却壁附近分别出现了辅助和相反的浮力。在辅助流中,在较大的格拉斯霍夫数下,湍流强度和热传递受到抑制。然而,在逆流中,湍流随着速度波动的增加而增强。另一项浮力研究认为,垂直方向的环空中有湍流。在外壁绝热的同时,在内壁上施加了具有低热量和高热量的等流量壁边界条件。结果表明,强烈的加热和浮力导致流动结构变形,从而导致湍流强度,剪切应力和湍流热通量的减小,特别是在受热壁附近。首先以中等的雷诺数研究了绕其轴的运动。当外管壁旋转时,在旋转壁附近实现了湍动能的显着降低。其次,进行了大涡模拟,以研究旋流对环形管流动中热和动量传递的影响。旋转的内壁。仿真表明,随着壁的旋转速度的增加,Nusselt数和壁摩擦系数均增加。还观察到由于涡旋,轴向速度分布变得平坦,湍流强度增强。;作为旋转效应研究的一部分,研究了带有热传递的旋转罗纹通道流动的大涡模拟。旋转轴平行于平行板通道的翼展方向。将均匀的热通量施加到通道上以实现两个旋转速率。结果表明,在稳定(前导)侧附近,湍流强度和热传递受到抑制,但在不稳定(后移)侧附近,湍流随着剪切应力和湍动能的增加而增强。

著录项

  • 作者

    Lee, Joon Sang;

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  • 年度 2004
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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