西安交通大学能源与动力工程学院,西安,710049
网络首发:2010-09-10,
纸质出版:2010
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阳祥, 李增耀, 陶文铨. 轴向旋转通道内浮升力对湍流影响的直接模拟[J]. 西安交通大学学报, 2010,44(9):11-15.
Direct Numerical Simulations on Influences of Buoyancy Forces on Turbulent Flow[J]. 2010, 44(9): 11-15.
采用直接数值模拟方法对绕截面中心轴旋转的方通道内的充分发展湍流进行了数值模拟
湍流雷诺数和普朗特数分别为400和0.71.为了分析浮升力对流体运动的影响
给出了不同格拉晓芙数Gr下的主流平均速度场、温度场、二次流、湍流强度、雷诺应力等湍流统计量的分布情况
并对旋转效应的稳定与否以及由此对湍流统计量的影响进行了分析.结果表明:旋转效应稳定的区域湍流受到抑制
旋转效应不稳定的区域湍流增强
随Gr的增加旋转效应稳定性变得更加复杂; 浮升力对流场和温度场有明显的影响
随Gr的增加影响更加明显.
Direct numerical simulations were performed for a fully developed axially rotating turbulent square duct flow with a turbulent Reynolds number of 400 and a Prandtl number of 0.71. In order to analyze the influences of buoyancy forces on fluid flow
the ensemble averaged turbulent statistical quantities including velocity field
temperature field
turbulent intensity
and Reynolds stress at different Grashof numbers were presented. The stability or instability properties of rotation and their effects on the statistical quantities were also analyzed. The results show that the centrifugal buoyancy influences the averaged velocity field and temperature field significantly and the influence is more obvious with the increase in Grashof number. The centrifugal buoyancy also affects the fluctuation quantities greatly
and the fluctuation intensity increases in the instable side and decreases in the stable side.
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带60°肋和出流孔的矩形通道端壁换热特性研究. 西安交通大学学报, 2010,44(5):116-119.
旋转矩形通道内湍流雷诺应力分析. 西安交通大学学报, 2009,43(7):6-10.
旋转矩形通道内湍流流动与换热的直接数值模拟. 西安交通大学学报, 2009,43(5):13-17.
竖直矩形窄通道空气自然对流换热特性的实验研究. 西安交通大学学报, 2009,43(3):10-13.
求解对流换热反问题的低阶模型. 西安交通大学学报, 2009,43(3):14-16.
具有截面自然对流通道内湍流换热的直接数值模拟. 西安交通大学学报, 2007,41(3):367-371.
纵向涡强化通道内换热的数值研究及机理分析. 西安交通大学学报, 2006,40(9):996-1001.
纵向涡发生器对矩形窄通道内对流换热的影响. 西安交通大学学报, 2006,40(9):1010-1013.
矩形通道内置加热板混合对流的实验研究. 西安交通大学学报, 2006,40(7):753-756.
纵向涡强化换热的数值研究及场协同原理分析. 西安交通大学学报, 2006,40(7):757-761.
矩形窄缝通道泡状流向弹状流流型转化研究. 西安交通大学学报, 2006,40(7):781-784.
环形窄缝通道内弥散流换热的理论计算. 西安交通大学学报, 2006,40(5):518-521.
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