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Airfoil-shaped self-agitator for convective heat transfer enhancement

机译:用于对流传热增强的翼型形自动搅拌器

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摘要

A novel airfoil-shaped self-agitator is developed for airside heat transfer enhancement within rectangular heatsink channels. Due to fluid-structure interaction, the airfoil-shaped self-agitator oscillates and generates vortices that improve mixing within the channel and thus improve the heat transfer. The fluid-structure interaction is simulated with the fully coupled method of remeshing. Numerical results show that the self-agitator can generate out-of-phase heaving and rotating motions to enhance heat transfer by 27% without additional power costs and the Nusselt number can be improved by 53% at the same Reynolds number. To investigate the fundamental aspects of the convective heat transfer enhancement with vortex generation, modal analysis is performed for the vorticity and temperature fields with dynamic modal decomposition. Instantaneous results can be constructed with steady mode and six dominant unsteady modes, while the steady mode results can be used to predict the average thermal performance. A prototype of the self-agitator is fabricated and tested experimentally for concept demonstration and validation. The experimental results show the self-agitator can improve the air-side thermal performance in the rectangular channel significantly without additional pumping power.
机译:开发了一种新型翼型形自动搅拌器,用于在矩形散热器通道内进行空间传热增强。由于流体结构相互作用,翼型形自动搅拌器振荡并产生改善通道内混合的涡流,从而改善传热。用完全耦合的倒闭方法模拟流体结构相互作用。数值结果表明,自我搅拌器可以产生异相的起伏和旋转运动,以增强27%而无需额外的功率成本,并且在相同的雷诺数中可以提高53%的纽带数。为了研究与涡流产生的对流传热增强的基本方面,对具有动态模态分解的涡旋和温度场进行模态分析。瞬时结果可以用稳定模式和六种主导的不稳定模式构建,而稳定模式结果可用于预测平均热性能。实验制造和测试自我搅拌器的原型,用于概念演示和验证。实验结果表明,自我搅拌器可以显着提高矩形通道中的空气侧热性能,而无需额外的泵送电力。

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