v型槽温水冷板的数值模拟与优化

Yaser Hadad, Bharath Ramakrishnan, S. Alkharabsheh, P. Chiarot, B. Sammakia
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引用次数: 6

摘要

在电子冷却领域,对于需要高热流密度的应用,水越来越多地取代空气。水是理想的替代品,因为它的高比热容和密度。事实上,与空气相比,高热容(高密度和比热容)使水能够接收、储存和携带更多的能量。水的不可压缩性和非常低的比容也使得流体循环所需的机械功更小。使用温水代替冷冻水使冷却过程更经济,但需要更有效地设计冷板。我们目前的工作重点是模拟和优化使用温水作为冷却剂的v型槽微型通道冷板。我们的研究结果表明,与平行通道设计相比,碰撞通道散热器的性能有显著差异。在碰撞设计中,将流体分为两个分支可以将流体速度和流道减半。流体速度和流动长度的减少会影响热边界层的发展,对于较短长度的热交换器(通道长度与热入口长度相当)来说,这是一个重要的考虑因素。将冷却剂均匀地分配到每个通道是一个挑战,因为撞击冷板的尺寸有严格的限制。
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Numerical modeling and optimization of a V-groove warm water cold-plate
In electronics cooling, water is increasingly replacing air for applications requiring high heat flux. Water is the ideal substitute due to its high specific heat capacity and density. Indeed, high values of heat capacity (high density and specific heat capacity) enable water to receive, store and carry higher amounts of energy compared to air. Water's incompressibility and very low specific volume also requires smaller amounts of mechanical work for fluid circulation. Using warm water instead of chilled water makes the cooling process more economical, but requires more efficiently designed cold-plates. Our current work focuses on modeling and optimization of a V-groove mini-channel cold-plate using warm water as the coolant. Our results show that the performance of an impinging channel heat sink is significantly different compared to parallel channel designs. Dividing the flow into two branches cuts the fluid velocity and flow path in half for the impinging design. This reduction in the fluid velocity and flow length affects the developing thermal boundary layer and is an important consideration for a shorter length heat exchanger (where the channel length is comparable to the thermal entrance length). Distributing the coolant uniformly to every channel is a challenge for impinging cold-plates where there are strict limitations on size.
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