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Theoretical evaluation and experimental investigation of microencapsulated phase change materials (MPCM) in electronics cooling applications

机译:电子冷却应用中微胶囊化相变材料(MPCM)的理论评价及实验研究

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In many liquid-cooled applications, the bulk temperature of the coolant, rather than the surface heat flux, limits the amount of cooling achieved. In such applications, the coolant flow path is often characterized by significant pressure losses, thus limiting the overall mass flow rate within the system. As a remedy, the idea of increasing the heat capacity of the cooling fluid by adding microencapsulated phase change material (MPCM) to the fluid has been lately explored. Firstly, this increase in the heat capacity comes at the cost of higher pressure-drop due to the increased viscosity of the slurry. Thus, the benefit of adding MPCMs to the coolant can only be realized if the increase in the latent heat capacity due to these materials is substantially more than the heat capacity lost due to the reduction in the mass flow rate. Secondly, it is expected that the conduction of heat through the plastic encapsulate from the coolant to the MPCM might tend to be a limiting factor at high flow rates. As a result, the latent capacity might get under-utilized at higher flow rates if the MPCMs do not completely fuse while the coolant undergoes heat absorption in the system to be cooled. In the present work, a theoretical performance metric is developed to assess the benefit margins obtainable with the use of MPCM slurries. The theoretical predictions on the effective specific heat of the slurry have been assessed against experimental measurements. The figures of merit proposed in this paper serve as design guidelines for liquid-cooled applications employing MPCM slurries.
机译:在许多液体冷却的应用中,冷却剂的体积温度,而不是表面热通量,限制了所达到的冷却的量。在这种应用中,冷却剂流动路径通常通过显着的压力损失来表征,从而限制了系统内的整体质量流速。作为补救措施,最近探索了通过向流体添加微胶囊化相变材料(MPCM)来增加冷却流体的热量的想法。首先,由于浆料的粘度增加,热容量的这种增加以更高的压降成本。因此,只有在由于这些材料引起的潜热容量的增加基本上大于由于质量流量的降低而损失的热容量,才能实现将MPCMS添加到冷却剂中的益处。其次,预期通过将热量从冷却剂封装到MPCM的塑料中的传导可能往往是高流速的限制因素。结果,如果MPCM在冷却剂在系统中经历吸热的同时,MPCMS不会完全保险,则潜在的能力可能以更高的流速被较高的流速。在本作工作中,开发了理论性能度量,以评估使用MPCM浆液可获得的益处利润。对浆料有效特异性的理论预测已经评估了实验测量。本文提出的优点图作为采用MPCM浆化的液体冷却应用的设计指导。

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