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Forced convection heat transfer of non-Newtonian MWCNTs nanofluids in microchannels under laminar flow

机译:层流下微通道中非牛顿MWCNTS纳米流体的强制对流传热

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摘要

Heat transfer process in micro/mini-scales becomes an urgent need for many applications where size and weight are severe constraints such as electronics. However, the latter led to developing new thermal fluids, the so-called nanofluids, with enhanced thermophysical properties to cover the high heat dissipation requirements due to the devices' miniaturization. In this work, a validated computational model is used to establish guidelines for the compact heat exchanger with microchannels, as well as to assist nanofluid properties tailoring. A finite volume method (FVM) approach is built considering laminar fluid flow conditions in a circular microchannel. The latter is used and validated against available experimental data, and the influence of temperature-dependent thermophysical properties and non-Newtonian behaviour of the MWCNTs (Multi-walled carbon nanotubes) nanofluids are considered. The results show that MWCNTs nanofluids enhance the heat transfer performance of the micro heat exchanger by up to 33%. Moreover, particular operating conditions are seen to improve the system energy efficiency, mainly near to Reynolds number (Re) equal to 1000, when taking into account both heat transfer performance and pressure drop. Additionally, a correlation of the average Nusselt number is proposed to estimate the heat transfer performance of nanofluids in microchannels.
机译:微/迷你秤中的传热过程成为许多应用的迫切需要尺寸和重量是诸如电子产品的严重约束。然而,后者导致开发新的热流体,所谓的纳米流体,具有增强的热物理特性,以覆盖由于器件的小型化引起的高散热要求。在这项工作中,验证的计算模型用于建立具有微通道的紧凑型热交换器的指导,以及辅助纳米流体特性剪裁。考虑圆形微通道中的层流体流动条件建立有限体积法(FVM)方法。考虑了后者和验证的可用实验数据,考虑了MWCNT(多壁碳纳米管)纳米流体的温度依赖性热物理性质和非牛顿行为的影响。结果表明,MWCNTS纳米流体增强了微型热交换器的热传递性能,高达33%。此外,当考虑到传热性能和压降时,可以看到特别的操作条件改善系统能效,主要靠近雷诺数(RE)等于1000。另外,提出了平均营养数的相关性来估计微通道中纳米流体的传热性能。

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