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Numerical analysis of the heat transfer and fluid flow characteristics of a nanofluid-cooled micropin-fin heat sink using the Eulerian-Lagrangian approach

机译:欧拉 - 拉格朗日方法的纳米流体冷却微型粉末散热器的传热和流体流动特性的数值分析

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In the present study, the thermofluid characteristics of a water and nanofluid-cooled micropin-fin heat sink have been evaluated by implementing a two-phase Eulerian-lagrangian model. The nanofluid consisted of an aqueous suspension of the spherical-shaped alumina nanopartides with the particle volume fraction (phi) ranging from 0.25% to 1%. The analysis has been performed by considering a heat sink comprising the staggered arrangement of 72 micropin-fins of the circular cross-section without tip clearance. A constant heat flux of 300 kW/m(2) was subjected at the base of the heat sink, whilst the utilised pressure drop (Delta P) across the heat sink was limited to Delta P<3000Pa. Heat transfer and fluid flow parameters were evaluated in terms of the local heat transfer coefficient, the enhancement ratio of the average convective heat transfer coefficient, thermal resistance and volume flow rate through the heat sink. Additionally, the temperature contours and flow streamlines across the heat sink elaborated the temperature distribution and flow attributes. Results indicated that under identical AP conditions, replacing water coolants with nanofluids optimised the thermal performance of the heat sink with a perceptible margin at the higher particle loadings. At the optimal pressure drop and particle concentration, nanoparticle dispersion into the hosting fluid demonstrated a maximum of 16% enhancement in the average heat transfer coefficient. (C) 2019 Elsevier B.V. All rights reserved.
机译:在本研究中,通过实施两相欧拉拉格朗日模型,已经评估了水和纳米流体冷却的微量散热器的热流体特性。纳米流体由球形氧化铝纳米粒子的水性悬浮液组成,颗粒体积级分(PHI)为0.25%至1%。通过考虑散热器,通过考虑散热器的散热片来进行分析,没有尖端间隙的圆形横截面的72微米翅片的交错布置。在散热器的底部进行300kW / m(2)的恒定热通量,同时散热器穿过的利用压降(Delta p)限于Delta P <3000Pa。在局部传热系数方面评估传热和流体流动参数,通过散热器的平均对流传热系数,热阻和体积流量的增强比来评估。另外,散热器上的温度轮廓和流动流线阐述了温度分布和流动属性。结果表明,在相同的AP条件下,用纳米流体替换水冷却剂优化了散热器的热性能,在更高的颗粒载荷处具有可察觉的余量。在最佳压降和颗粒浓度下,纳米颗粒分散在宿主流体中,在平均传热系数中最大地显示出16%的增强。 (c)2019年Elsevier B.V.保留所有权利。

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