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Experimental and numerical study on flow characteristics and heat transfer of an oscillating jet in a channel

机译:通道中振荡射流的流动特性和传热的实验与数值研究

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A fluidic oscillator can produce self-induced and self-sustaining oscillating jet by fluid supply without moving parts. This device has attracted research interest in heat and mass transfer enhancement in recent years. In the current study, a double-feedback fluidic oscillator was numerically investigated based on three-dimensional unsteady Reynolds-averaged Navier-Stokes equations (3D-URANS) while the operating fluid is an incompressible flow. Then, the results were validated with experimental data by two-dimensional time-resolved particle image velocimetry (2D-TR-PIV) and thermographic phosphor thermometry (TPT) for the velocity and temperature field, respectively. A grid sensitivity study was done by comparison of instantaneous and time-averaged flow fields. Additionally, the proper orthogonal decomposition (POD) method was used to find the phase information of the oscillating jet, and fast Fourier transform (FFT) analysis was used to find the frequency of the oscillating jet to validate the numerical results. The effect of the working fluid was also studied. Finally, in order to determine the effect of the Reynolds number on heat transfer enhancement, the Q-criterion was calculated to provide detailed insight into the oscillating mechanism. The results show that the non-dimensional frequency of oscillation is independent of either the working fluid or mass flow rate. Additionally, for a given fluid, increasing Re causes strong vortices and increases the frequency of oscillation. However, the convection heat transfer did not change significantly when varying the mass flow rate because the convection velocity of vortices increases as the mass flow rate is enhanced. A comparison with a free jet reveals that the oscillating jet in a channel is useful in terms of covering a larger area.
机译:流体振荡器可以通过流体供应产生自诱导和自维持振荡射流,而不会移动部件。该装置近年来吸引了对热量和传质提升的研究兴趣。在本研究中,基于三维不稳定的雷诺平均 - 平均的Navier-Stokes方程(3D-Urans)在数值上研究了一种双反馈流体振荡器,而操作流体是不可压缩的流动。然后,通过二维时间分辨粒子图像速度(2D-TR-PIV)和用于速度和温度场的热成分磷光体温度(TPT),用实验数据验证结果。通过比较瞬时和时间平均流场来完成网格敏感性研究。另外,使用适当的正交分解(POD)方法来找到振荡射流的相位信息,并且使用快速傅里叶变换(FFT)分析来找到振荡射流的频率,以验证数值结果。还研究了工作流体的效果。最后,为了确定雷诺数对传热增强的影响,计算Q标准以提供对振荡机制的详细洞察。结果表明,振荡的非尺寸频率与工作流体或质量流量无关。另外,对于给定的流体,增加Re会导致强烈的涡流并增加振荡频率。然而,当变化质量流速时,对流传热不会显着变化,因为随着质量流量的增加而增加,涡流的对流速度增加。与自由喷射的比较揭示了通道中的振荡射流在覆盖较大区域方面可用。

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