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Direct Numerical Simulation of Heat Transfer in Converging-Diverging Wavy Channels

机译:会聚-扩散波浪通道内传热的直接数值模拟

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摘要

Corrugated walls are widely used as passive devices for heat and mass transfer enhancement; they are most effective when operated at transitional and turbulent Reynolds numbers. In the present study, direct numerical simulation is used to investigate the unsteady forced convection in sinusoidal, symmetric wavy channels. A novel numerical method is employed for the simulations; it is meant for fully developed flows in periodic ducts of prescribed wall temperature. The algorithm is free of iterative procedures; it accounts for the effects of streamwise diffusion and can be used for unsteady problems. Results of two simulations in the transitional regime for Reynolds numbers based on average duct height and average velocity of Re=481 and Re=872 are reported. Time averaged and instantaneous velocity and temperature fields together with second-order statistics are interpreted in order to describe the mechanism associated with heat transfer augmentation. Heat flux distributions locate the most active areas in heat transfer and reveal the effects of convective mixing. Slanted traveling waves of high temperature are identified; peak values of Nusselt number are attained when the high-temperature fluid of the waves reaches the converging walls.
机译:波纹壁被广泛用作被动设备,以增强传热和传质。当以过渡雷诺数和湍流雷诺数操作时,它们最有效。在本研究中,直接数值模拟用于研究正弦对称波浪通道中的非稳态强迫对流。仿真采用了一种新颖的数值方法。它用于在规定壁温的周期性管道中充分发育的流动。该算法没有迭代过程。它解决了沿流扩散的影响,可用于不稳定问题。报告了基于平均风管高度和Re = 481和Re = 872的平均速度对雷诺数进行过渡过程的两次模拟结果。解释时间平均和瞬时速度和温度场以及二阶统计量,以便描述与传热增加相关的机制。热通量分布确定了传热中最活跃的区域,并揭示了对流混合的影响。识别出高温的倾斜行波;当波浪的高温流体到达会聚壁时,Nusselt数达到峰值。

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