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Numerical Analysis of Solar Triangular Air Duct with Conical Turbulators

机译:锥形湍流器太阳三角空气管道的数值分析

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Solar air heater is a device that converts incoming solar radiation into usable heat energy. But its low heat transfer coefficient is a constraint attached to its widespread use. Disturbance or roughness on the absorber plate creates turbulence in the fluid flow which results in the increase of heat transfer coefficient. In the past, such kinds of investigations have been carried out with different roughness shapes in different shape of ducts. In this paper, a numerical investigation is conducted on a solar triangular air duct with conical protrusion turbulators for a relevant range of Reynolds number and wide geometrical parameters. Commercially available ANSYS FLUENT 18.1 is used to numerically simulate the 3D model of triangular duct with conical turbulators. The SST k-ω model is employed to solve the turbulent flow governing equations as it is found to have good agreement with the empirical formula for flat plate collector. Effect of roughness height, e=0.8-1.7 mm and roughness pitch, P=10-18 mm on dimensionless performance parameters of solar air collector is observed at a wide range of Reynolds number, Re=3000-18000. Sixteen different geometrical configurations are considered for overall investigation. Optimum geometrical configuration of conical turbulators is evaluated.
机译:太阳能空气加热器是一种将传入的太阳辐射转换为可用的热能。但其低传热系数是附加到其广泛使用的约束。吸收板上的干扰或粗糙度在流体流动中产生湍流,这导致传热系数的增加。在过去,已经用不同形状的管道形状的不同粗糙度形状进行了这种调查。在本文中,在太阳能三角形空气管道上进行了数值研究,该锥形突起湍流器用于相关的雷诺数和宽几何参数范围。商业上可获得的ANSYS流畅的18.1用于用锥形湍流器进行数字模拟三角管的3D模型。 SST k-ω模型用于解决湍流控制方程,因为发现与平板收集器的实证公式具有良好的一致性。粗糙度高度的影响,e = 0.8-1.7mm和粗糙度沥青,在广泛的雷诺数,重新= 3000-18000,观察到太阳能集电器的无量子能参数的P = 10-18 mm。六个不同的几何配置被考虑用于整体调查。评估锥形湍流器的最佳几何配置。

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