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Direct numerical simulation of turbulent flow and combined convective heat transfer in a square duct with axial rotation

机译:轴向旋转方管内湍流和对流换热的直接数值模拟

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Direct numerical simulations (DNS) of turbulent flow and convective heat transfer in a square duct with axial rotation were carried out. The pressure-driven flow is assumed to be hydrodynamically and thermally fully developed, for which the Reynolds number based on the friction velocity and hydraulic diameter is kept at constant (Re_ι = 400). In the finite length duct, two opposite walls are perfectly insulated and another two opposite walls are kept at constant but different temperatures. Four thermal boundary conditions were chosen in combination with axial rotation to study the effects of rotation and Grashof number on mean flow, turbulent quantities and momentum budget. The results show that thermal boundary conditions have significant effects on the topology of secondary flows, profiles of streamwise velocity, distribution of temperature and other turbulent statistic quantities but have marginal effects on the bulk-averaged quantities; Coriolis force affects the statistical results very slightly because it exerts on the plane normal to main flow direction and the rotation rate is low; Buoyancy effects on the turbulent flow and heat transfer increase with the increase of Crashof number (Gr), and become the major mechanism of the development of secondary flow, turbulence increase, and momentum and energy transport at high Grashof number.
机译:对带有轴向旋转的方管中的湍流和对流换热进行了直接数值模拟(DNS)。假设压力驱动的流动是在流体动力学和热学上充分发展的,为此,基于摩擦速度和水力直径的雷诺数保持恒定(Re_1 = 400)。在有限长度的管道中,两个相对的壁完全绝缘,另外两个相对的壁保持恒定但不同的温度。结合轴向旋转选择了四个热边界条件,以研究旋转和Grashof数对平均流量,湍流量和动量预算的影响。结果表明,热边界条件对二次流的拓扑结构,水流速度分布,温度分布和其他湍流统计量有显着影响,但对总体平均量有边际影响。科里奥利力对统计结果的影响很小,因为它作用在垂直于主流方向的平面上并且转速低。浮力对湍流和传热的影响随着Crashof数(Gr)的增加而增加,并成为次级流,湍流增加以及在高Grashof数下动量和能量传输的主要机制。

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