首页> 外文期刊>International Journal of Heat and Mass Transfer >Experiment on thermal performance of water-based suspensions of Al_2O_3 nanoparticles and MEPCM particles in a minichannel heat sink
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Experiment on thermal performance of water-based suspensions of Al_2O_3 nanoparticles and MEPCM particles in a minichannel heat sink

机译:Al_2O_3纳米粒子和MEPCM粒子在微通道散热器中水基悬浮液的热性能实验

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In the present study, experimental efforts have been performed to explore the forced convection heat transfer efficacy of using water-based suspensions of alumina nanoparticles (nanofluid) and microencap-sulated phase change material (MEPCM) particles (PCM suspension) to replace the pure water as the working fluids in a minichannel heat sink (Mini-CHS). The heat sink fabricated from copper consists of 10 rectangular minichannels, each of which has a width of 1 mm, a depth of 1.5 mm, a length of 50 mm, having a hydraulic diameter of 1.2 mm. The minichannel heat sink was heated with a uniform base heat flux with the Reynolds numbers ranged from 133 to 1515. The mass fractions of the nanoparticles and MEPCM particles dispersed in the water-based suspensions were in the ranges of 2-10 wt%, respectively. Experimental results obtained reveal that the heat dissipation effectiveness of the nanofluid and PCM suspension depends significantly on their flow rates through the heat sink. For the nanofluid, the highest enhancement of 57% in the averaged heat transfer coefficient was detected under the highest flow rate; while for the PCM suspension, the highest enhancement of 51% under the lowest flow rate. For the hybrid water-based suspensions, the effect of simultaneous dispersion of the nanoparticles and MEPCM particles in water appears to be supplementary with added benefit of simultaneous increases in the effective thermal conductivity and specific heat such that the heat transfer effectiveness could be further increased up to 56% with little dependence on the flow rate.
机译:在本研究中,已经进行了实验工作来探索使用氧化铝纳米颗粒(纳米流体)和微囊绝缘相变材料(MEPCM)颗粒(PCM悬浮液)的水基悬浮液代替纯水的强制对流传热功效。作为微型通道散热器(Mini-CHS)中的工作流体。由铜制成的散热器包括10个矩形微型通道,每个微型通道的宽度为1毫米,深度为1.5毫米,长度为50毫米,水力直径为1.2毫米。用均匀的基本热通量加热微通道散热器,雷诺数在133至1515之间。分散在水基悬浮液中的纳米颗粒和MEPCM颗粒的质量分数分别在2-10 wt%的范围内。获得的实验结果表明,纳米流体和PCM悬浮液的散热效率在很大程度上取决于它们通过散热器的流速。对于纳米流体,在最高流速下,平均传热系数最高提高了57%。而对于PCM悬架,在最低流速下最高提升了51%。对于混合水基悬浮液,纳米粒子和MEPCM粒子同时分散在水中的效果似乎是补充的,同时还增加了有效导热率和比热的同时增加,从而可以进一步提高传热效率达到56%,对流速的依赖性很小。

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