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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Enhanced flow boiling in silicon nanowire-coated manifold microchannels
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Enhanced flow boiling in silicon nanowire-coated manifold microchannels

机译:硅纳米线涂层歧管微型通道的增强流沸腾

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An experimental study was carried out to investigate the heat transfer, pressure drop and flow instability characteristics associated with the flow pattern of deionized water during two-phase boiling in a silicon-based manifold microchannel heat sink coated with silicon nanowires (SiNWs) compared to a plain-wall device. The manifold microchannel device featured parallel transverse microchannels etched on a silicon substrate and longitudinal microchannels etched on a glass cover plate. Silicon nanowires were generated on the bottom and the sidewalls of the silicon microchannels. A closed-loop experimental system was constructed to demonstrate thermal and hydraulic performance. Experimental results were presented with mass fluxes ranging from 250 to 1250 kg/m(2) s and subcooled inlet temperatures from 15K to 65 K. Results for the SiNWs device showed an approximate 20% improvement in heat flux rejection compared to the plain-wall device under the same wall superheat conditions. A subcooled inlet temperature of 65K associated with a mass flux of 1250 kg/m(2) s is shown to be capable of dissipating an effective heat flux of 431.3 W/cm(2) with a wall superheat of about 85 K. Overall, the SiNW coatings proved positive effects on enhancing the flow boiling heat transfer with slower pressure drop increase, meanwhile the three-dimensional manifold microchannel design is revealed to effectively mitigate flow instability during the entire single and two-phase flow regions. This indicates great potential in utilizing three-dimensional flows by integrating SiNWs surface structures in high heat flux cooling applications.
机译:进行了实验研究,以研究与涂有硅纳米线(SINWS)的硅基歧管微通道散热器中的两相沸腾过程中与去离子水的流动模式相关的传热,压降和流量不稳定特性。普通墙设备。歧管微型通道装置以蚀刻在玻璃盖板上的硅基板和纵向微通道上蚀刻的平行横向微通道。在硅片微通道的底部和侧壁上产生硅纳米线。构建闭环实验系统以证明热和液压性能。实验结果呈含有从250-1250kg / m(2)s的质量助量和从15k至65k的过冷的入口温度。SINWS器件的结果显示与普通墙相比的热通量抑制的近似值20%在同一墙体过热条件下的装置。与1250kg / m(2)秒的质量通量相关的65K的过冷入口温度被示出能够散发431.3W / cm(2)的有效热通量,壁过热约为85k。总体而言, SINW涂层证明了对增强流量沸腾热传递的积极作用,增加了压力下降的增加,同时揭示了三维歧管微通道设计,以在整个单相和两相流区域期间有效地减轻流动不稳定。这表明通过在高热通量冷却应用中积分SINWS表面结构来利用三维流动的巨大潜力。

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