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Experimental and numerical investigation of the effect of number of parallel microchannels on flow boiling heat transfer

机译:平行微通道数对流沸热转移效果的实验和数值研究

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A combined numerical and experimental investigation to elucidate the two-phase flow behaviour and heat transfer during subcooled boiling of water in 1 × 1 cm~2 footprint area heat sinks with six, ten, and fourteen parallel microchannels is performed. A three-dimensional, laminar, multi-phase, transient numerical model is developed to simulate flow boiling in microchannels. This study is one of the first studies which reports a three-dimensional numerical simulation of flow boiling in a large area multiple parallel microchannels heat sink including the effect of inlet and outlet plenums. We show an excellent agreement in heat transfer and pressure drop data with experimental results on a heat sink with fourteen parallel microchannels over a wide range of applied heat flux spanning various boiling regimes. The results show that the vapour blocking in the channel near the outlet is primarily responsible for instabilities and oscillations in the pressure drop, the surface temperature, and the mass flux. Intensified confinement due to the decrease in the number of the channels for a constant fin width results in increased surface temperatures. Similarly, increase in the number of the channels from six to fourteen improved heat transfer significantly wherein a significant drop of 45.5 °C in surface temperature with little increase of 37% in pressure drop is observed for a mass flux of 500 kg/m~2s and a heat flux of 220 W/cm~2. MicroChannel heat sink with fourteen channels demonstrates on an average nearly 240% higher heat transfer coefficient in comparison to the heat sink with six channels. The numerical modelling framework used in this study can be used to provide design guidelines for microchannel heat sinks.
机译:进行了组合的数值和实验研究,以阐明在1×1cm〜2占地面积散热器中释放水中的两相流动和传热在散热区域散热器中,具有六个,十个和十四个平行微通道。开发了三维,层状,多相,瞬态数值模型以模拟微通道中的流动沸腾。本研究是第一个研究之一,其报告了大面积多平行微通道散热器中的流沸腾的三维数值模拟,包括入口和出口增压件的效果。我们在传热和压力下降数据中显示出具有优异协议,并在散热器上具有实验结果,在多种施加的热通量上具有十四并行微通道的散热器,遍布各种沸腾的制度。结果表明,出口附近的通道中的蒸汽阻挡主要负责压降,表面温度和质量通量的稳定性和振荡。由于恒定翅片宽度的通道数量的减少而导致的限制导致表面温度增加。类似地,显着增加了六到十四到十四次的传热的增加,其中对于500kg / m〜2s的质量通量,观察到表面温度下降45.5℃的显着下降45.5℃和220 w / cm〜2的热通量。微通道散热器有十四个通道的散热系数与六个通道的散热器相比,平均近240%较高的传热系数。本研究中使用的数值建模框架可用于为微通道散热器提供设计指南。

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