会议论文详细信息
Eurotherm Seminar 102: Thermal Management of Electronic Systems
Heat Transfer Characteristics of Liquid-Gas Taylor Flows incorporating Microencapsulated Phase Change Materials
物理学;无线电电子学
Howard, J.A.^1 ; Walsh, P.A.^2
Bell Labs, Thermal Management Research Group, Alcatel-Lucent, I-Dublin, Ireland^1
Stokes Institute, Department of Civil Engineering, University of Limerick, Ireland^2
关键词: Dimensionless variables;    Heat transfer characteristics;    Heat Transfer enhancement;    Liquid cooling technology;    Local heat transfer coefficient;    Microencapsulated phase change material;    Particle concentrations;    Single-phase liquids;   
Others  :  https://iopscience.iop.org/article/10.1088/1742-6596/525/1/012022/pdf
DOI  :  10.1088/1742-6596/525/1/012022
来源: IOP
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【 摘 要 】
This paper presents an investigation on the heat transfer characteristics associated with liquid-gas Taylor flows in mini channels incorporating microencapsulated phase change materials (MPCM). Taylor flows have been shown to result in heat transfer enhancements due to the fluid recirculation experienced within liquid slugs which is attributable to the alternating liquid slug and gas bubble flow structure. Microencapsulated phase change materials (MPCM) also offer significant potential with increased thermal capacity due to the latent heat required to cause phase change. The primary aim of this work was to examine the overall heat transfer potential associated with combining these two novel liquid cooling technologies. By investigating the local heat transfer characteristics, the augmentation/degradation over single phase liquid cooling was quantified while examining the effects of dimensionless variables, including Reynolds number, liquid slug length and gas void fraction. An experimental test facility was developed which had a heated test section and allowed MPCM-air Taylor flows to be subjected to a constant heat flux boundary condition. Infrared thermography was used to record high resolution experimental wall temperature measurements and determine local heat transfer coefficients from the thermal entrance point. 30.2% mass particle concentration of the MPCM suspension fluid was examined as it provided the maximum latent heat for absorption. Results demonstrate a significant reduction in experimental wall temperatures associated with MPCM-air Taylor flows when compared with the Graetz solution for conventional single phase coolants. Total enhancement in the thermally developed region is observed to be a combination of the individual contributions due to recirculation within the liquid slugs and also absorption of latent heat. Overall, the study highlights the potential heat transfer enhancements that are attainable within heat exchange devices employing MPCM Taylor flows.
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