Forced convection heat transfer enhancement in heat sink channels using aeroelastically fluttering reeds

T. Crittenden, S. Jha, A. Glezer
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引用次数: 9

Abstract

Heat transport within rectangular, mm-scale channels of forced convection heat sinks is enhanced by the aeroelastic fluttering of cantilevered planar thin-film reeds protruding into the channels. The shedding of a train of counter-rotating vortical structures induced by the motion of the reeds and their effects on heat transfer from the channel walls are investigated in two separate testbeds. The interaction of the reeds with the cross flow in the channels is investigated in a single channel model using PIV with specific emphasis on the formation, shedding, and advection of small-scale vorticity concentrations that lead to enhanced mixing of the core flow and enhanced dissipation reminiscent of a fully-developed turbulent channel flow. Heat transfer enhancement is investigated using a pair of back-to-back heat sinks with a common heater that model the fins of an air-cooled condenser. It is demonstrated that the power dissipation and temperature in the heat sink base flow can be matched at reduced air flow rate with the addition of the reeds (for example, between Re = 1,000 baseline and 775 with reeds). The reduction in the required air volume flow rate indicates the potential for lower system-level losses of the cooling air flow and consequently significant reductions in the cooling power.
利用气弹性颤振芦苇增强散热器通道中的强制对流换热
在强制对流散热器的矩形mm尺度通道内,突出在通道内的悬臂式平面薄膜芦苇的气动弹性颤振增强了热传递。在两个独立的试验台上,研究了芦苇运动引起的一列反向旋转涡结构的脱落及其对通道壁传热的影响。在单通道模型中,利用PIV研究了芦苇与通道内交叉流动的相互作用,特别强调了小尺度涡度浓度的形成、脱落和平流,这些涡度浓度导致核心流动的混合增强和耗散增强,使人想起一个完全发展的湍流通道流动。传热增强的研究使用一对背靠背的散热器与一个共同的加热器,模拟一个风冷冷凝器的翅片。结果表明,在降低空气流速时,加入芦苇(例如,在Re = 1000基线和775芦苇之间),散热器基流中的功耗和温度可以匹配。所需风量流量的减少表明冷却气流的系统级损失可能会降低,因此冷却功率也会显著降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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