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Flow Boiling of R134a in a Multi-Microchannel Heat Sink With Hotspot Heaters for Energy-Efficient Microelectronic CPU Cooling Applications

机译:R134a在带有热点加热器的多微通道散热器中的流动沸腾,用于节能型微电子CPU冷却应用

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This paper focuses on two-phase flow boiling of refrigerant R134a inside a copper multi-microchannel heat sink for microelectronic central processing unit cooling applications. The heat sink is composed of 100 parallel microchannels, 100 $mu{rm m}$ wide, 680 $mu{rm m}$ high, and 15 mm long, with 72-$mu{rm m}$-thick fins separating the channels. The base heat flux was varied from 2.57 to 189 ${rm W}/{rm cm}^{2}$ and the mass flux from 205 to 1000 ${rm kg}/{rm m}^{2}{rm s}$, at a nominal saturation temperature of 63$^{circ}{rm C}$. Over 40 000 local heat transfer coefficients were measured at 35 locations using local heaters and temperature sensors, for which different heat transfer trends were identified. The main ones were that the heat transfer coefficient increased with heat flux and was independent of mass flow rate. Heat transfer coefficients as high as 270 000 ${rm W/m}^{2}{rm K}$ (relative to the base area) were reached, keeping the chip under 85$^{circ}{rm C}$ with a maximum of 94 kPa of pressure drop, for no inlet subcooling and a coolant flow rate of 1000 ${rm kg}/{rm m}^{2}{rm s}$ .
机译:本文重点研究用于多电子中央处理单元冷却应用的铜多微通道散热器内制冷剂R134a的两相流沸腾。散热器由100个平行的微通道,100μm的高,680μm的高,15 mm长的散热片组成,其中72-μm的厚散热片将散热片分隔开。渠道。基本热通量从2.57到189 $ {rm W} / {rm cm} ^ {2} $变化,质量通量从205到1000 $ {rm kg} / {rm m} ^ {2} {rm s } $,标称饱和温度为63 $ ^ {circ} {rm C} $。使用本地加热器和温度传感器在35个位置测量了超过40,000个局部传热系数,并确定了不同的传热趋势。主要是传热系数随热通量的增加而增加,与质量流量无关。传热系数高达270 000 $ {rm W / m} ^ {2} {rm K} $(相对于基面积),从而使芯片保持在85 $ ^ {circ} {rm C} $以下最大压力降为94 kPa,无入口过冷且冷却剂流量为1000 $ {rm kg} / {rm m} ^ {2} {rm s} $。

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