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Thermal and hydraulic characteristics of microchannel heat sinks with cavities and fins based on field synergy and thermodynamic analysis

机译:基于现场协同和热力学分析的微通道散热器的热和液压特性

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摘要

Novel microchannel heat sinks (MCHSs) with cavities and fins are put forward for the cooling demand of microelectronic devices with high heat production. The flow and convective heat transfer of the microchannels with isosceles triangular cavities and four different fins, including rectangular fins, streamlined fins, backward drop-shaped fins and forward drop-shaped fins, are studied numerically for Reynolds number (Re) ranging of 173-635, i.e. flow rate (Q(v)) ranging of 12-54 ml/min. Firstly, the combined effect of the cavities and fins on the thermal and hydraulic characteristics is analyzed. Secondly, the field synergy principle is adopted to explore the synergy between the fluid temperature and velocity fields; the entropy generation is used to investigate the thermodynamic performance and the irreversibility for different MCHSs in terms of second law of thermodynamics. Lastly, the effect of fin shape on the comprehensive performance of the complex MCHSs is evaluated based on thermal resistance and performance evaluation criterion (PEG). Results indicate that the novel designs present conspicuous heat transfer improvement owing to the redevelopment of boundary layer, intensive secondary flow and effective chaotic mixing compared to conventional rectangular microchannel (R). According to the field synergy principle and thermodynamic analysis, the superior thermal performance of the novel MCHSs can be attributed to the improved synergy between the temperature and flow fields, and the reduction of total irreversible loss. But the micro structures lead to the mainstream separation, acceleration and disturbance, which increase the pressure drop and friction loss. Nevertheless, the comprehensive performance of the complex MCHSs has been improved obviously compared to the conventional one. Among the novel heat sinks, the microchannel with isosceles triangular cavities and forward drop-shaped fins acquires the greatest overall per- formance with PEC = 1.617 Q(v) = 36 ml/min, with the advantage of the notably enhanced thermal perfor- mance accompanied by the acceptable pressure drop.
机译:具有空腔和翅片的新型微通道散热器(MCHS)用于高热生产的微电子器件的冷却需求。用等腰三角形腔的微通道的流动和对流传热和四个不同的翅片,包括矩形翅片,流线型翅片,后滴形翅片和前滴形翅片,用于雷诺数(RE)的173- 635,即流速(Q(Q))为12-54ml / min。首先,分析了空腔和翅片对热和液压特性的综合作用。其次,采用现场协同原理探索流体温度和速度场之间的协同作用;熵生成用于研究热力学性能和不同MCH的不可逆转性,在第二热力学的第二律上。最后,基于热阻和性能评估标准(PEG)评估FIN形状对复杂MCH的综合性能的影响。结果表明,与传统的矩形微通道(R)相比,新颖的设计呈边界层的重建,强化二次流动和有效混沌混合的开发。根据现场协同原理和热力学分析,新颖的MCHS的卓越热性能可归因于温度和流场之间的改进协同作用,以及减少总不可逆转损耗。但微结构导致主流分离,加速度和干扰,这增加了压降和摩擦损失。尽管如此,与传统的综合MCHS的综合性能明显提高了。在新型散热器中,具有等腰三角形腔和前滴形鳍片的微通道获取最大的效果= 1.617 Q(v)= 36ml / min,具有显着增强的热性能的优势伴随着可接受的压降。

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