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Local two-phase heat transfer from arrays of confined and submerged impinging jets

机译:来自约束和浸没式冲击射流阵列的局部两相传热

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Local heat transfer distributions at high spatial resolution are obtained under two-phase transport conditions in confined and submerged impingement from arrays of miniature jets. The dielectric liquid HFE-7100 is investigated to enable direct cooling of electronic components. Three round orifice geometries with the same total orifice open area are investigated, including a single orifice of 3.75 mm diameter, a 3×3 array of 1.25 mm diameter orifices, and a 5 x 5 array of 0.75 mm diameter orifices. A thin-foil heat source backed by a magnesium-fluoride window is fabricated to allow detailed mapping of the heated surface temperature via infrared (IR) thermography. The rigorous experimental calibration procedures employed, and correction for heat spreading within the thermally conductive IR-transparent window, yield low-uncertainty local heat transfer coefficient distributions. Each of the three orifice geometries is characterized at volumetric flow rates of 450 ml/min, 900 ml/min, and 1800 ml/min, resulting in a Reynolds number range of 1920-39400. Pressure drop across the confined jets is measured for all experimental cases. The test facility and measurement techniques employed are validated against heat transfer and pressure drop correlations in the literature for single-phase jet impingement from a single round orifice. Spatially resolved temperature contour maps, along with local heat transfer coefficient and boiling curves, are presented as a function of applied heat flux. Boiling is shown to coexist with single-phase convection under the impinging liquid jets. Two-phase enhancement is exhibited at large radial distances from the single jet axis, and in regions between neighboring jets within the arrays. The arrays of jets result in higher area-averaged heat transfer than a single jet at a fixed flow rate; however, the arrays display larger relative nonuniformity in local two-phase heat transfer coefficient and surface temperature. While the 5 x 5 array resulted in a higher (and the 3 x 3 a lower) pressure drop than the single jet, all orifices displayed pressure drop that is independent of the applied heat flux and vapor generation.
机译:在两相输运条件下,从微型射流阵列的受限和浸没碰撞中获得了高空间分辨率的局部传热分布。对电介质液体HFE-7100进行了研究,以实现电子组件的直接冷却。研究了三个具有相同总孔开口面积的圆形孔几何形状,包括直径为3.75毫米的单个孔,直径为1.25毫米的孔的3×3阵列和直径为0.75毫米的孔的5 x 5阵列。制作了由氟化镁窗口支持的薄箔热源,以允许通过红外(IR)热成像详细绘制加热的表面温度。所采用的严格的实验校准程序以及对导热红外透明窗口内的热量散布的校正可产生低不确定度的局部传热系数分布。三个孔口几何形状中的每一个都以450毫升/分钟,900毫升/分钟和1800毫升/分钟的体积流量进行表征,从而得出雷诺数范围为1920-39400。在所有实验情况下,均会测量整个密闭射流的压降。对于单圆形孔口的单相射流冲击,已针对文献中的传热和压降相关性对采用的测试设施和测量技术进行了验证。空间分辨的温度等高线图以及局部传热系数和沸腾曲线作为施加的热通量的函数表示。在撞击的液体射流下,沸腾与单相对流共存。在距单个射流轴的较大径向距离处以及在阵列内的相邻射流之间的区域中,表现出两相增强。射流阵列比固定流速下的单个射流产生更高的平均面积传热;然而,该阵列在局部两相传热系数和表面温度方面显示出较大的相对不均匀性。尽管5 x 5阵列导致的压降比单喷嘴高(而3 x 3 a更低),但所有孔口的压降均与所施加的热通量和蒸汽产生无关。

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