首页> 外文会议>ASME Fluids Engineering Division summer meeting >EFFECTS OF OPERATING FREQUENCY OF A SYNTHETIC JET AND CROSS FLOW VELOCITY ON THE HEAT TRANSFER ENHANCEMENT IN A MICRO-CHANNEL
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EFFECTS OF OPERATING FREQUENCY OF A SYNTHETIC JET AND CROSS FLOW VELOCITY ON THE HEAT TRANSFER ENHANCEMENT IN A MICRO-CHANNEL

机译:合成射流的工作频率和横流速度对微通道传热增强的影响

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Current devices have been reported to approach 1 MW/m2 so that current heat dissipation devices will not be able to cope with increasing heat flux. It has therefore been proposed that in order to manage the ever-increasing heat rejection demands, it will be necessary to have cooling fluid flowing through micro-channels in the microchip itself. Since laminar flow is likely to result for reasonable pressure drops in these micro-channels, the heat transfer rate will need to be enhanced if this approach is to be successfully used. Synthetic jets, which are the main focus of this research, generate vortex structures which disrupt the flow. They have, therefore, been proposed as a means of providing mixing, thereby augmenting the heat transfer potential of the fluid in the micro-channel. A two-dimensional computational model has been developed to investigate the cooling effect of a synthetic jet interacting with a turbulent cross-flow in a micro-channel. Validation of the hydrodynamics feature of the flow was done by comparing numerical results against existing experimental results. A parametric study was performed on a fixed geometry by using a constant wall temperature to investigate the effect of operating frequency of the synthetic jet actuator coupling with different flow rates in the micro-channel. The operating frequencies of the jet were simulated at 1000 Hz, 1500 Hz and 2000 Hz while the cross flows vary from 0 to 10 m/s. In general, the flow structures in the micro-channel were shown to be greatly disrupted when the synthetic jet actuator was turned on. However, the heat transfer enhancement due to the operation of the synthetic jet reduces as the cross flow increases. The frequency of the diaphragm oscillation has a large influence on the distance between the adjacent vortices and therefore on the average flow rate in the micro-channel. The near wall Nusselt Number was calculated in order to compare the effects of operating frequency of the jet and flow rate in the micro-channel. The jet Reynolds number was increased by 50% when the actuator frequency was increased from 1000 Hz to 1500 Hz while the heat transfer enhancement was increased by 21%. Further increment of actuator frequency from 1000 Hz to 2000 Hz resulted in a doubled jet Reynolds number while the heat transfer enhancement was improved by 66%. The heat transfer enhancement showed greater improvement when the actuator operating at 2000 Hz.
机译:据报道,目前的设备接近1 MW / m2,因此当前的散热设备将无法应对不断增加的热通量。因此,已经提出,为了应对不断增长的排热需求,将需要使冷却流体流过微芯片本身中的微通道。由于在这些微通道中可能会因合理的压降而产生层流,因此,如果要成功使用此方法,则需要提高传热速率。合成射流是本研究的主要重点,其产生的涡流结构会扰乱流动。因此,已提出将它们作为提供混合的手段,从而增加微通道中流体的传热潜力。已经开发了二维计算模型以研究合成射流与微通道中湍流交叉流相互作用的冷却效果。通过将数值结果与现有实验结果进行比较来验证流动的水动力特性。通过使用恒定的壁温对固定的几何形状进行了参数研究,以研究在微通道中具有不同流速的合成射流致动器联轴器的工作频率的影响。射流的工作频率在1000 Hz,1500 Hz和2000 Hz下模拟,而横流从0到10 m / s变化。通常,当打开合成射流致动器时,微通道中的流动结构显示出极大的破坏。然而,随着错流的增加,由于合成射流的操作引起的传热增强降低。膜片振荡的频率对相邻涡旋之间的距离有很大影响,因此对微通道中的平均流速也有很大的影响。计算近壁努塞尔数,以便比较射流的工作频率和微通道中流速的影响。当执行器频率从1000 Hz增加到1500 Hz时,射流雷诺数增加了50%,而传热增强则增加了21%。致动器频率从1000 Hz进一步增加到2000 Hz,导致射流雷诺数增加一倍,同时传热增强效果提高了66%。当执行器在2000 Hz下运行时,传热增强表现出更大的改善。

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