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首页> 外文期刊>Journal of thermal analysis and calorimetry >Optimization of thermal and hydraulic performance of nanofluids in a rectangular miniature-channel with various fins using response surface methodology
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Optimization of thermal and hydraulic performance of nanofluids in a rectangular miniature-channel with various fins using response surface methodology

机译:用响应面法用各种翅片在矩形微型通道中纳米流体的热和水力性能的优化

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摘要

In the present work, optimization of the thermal and hydraulic performances of various nanofluids inside a rectangular miniature-channel heat sink with different longitudinal fins was studied. Response surface methodology was used to obtain optimal condition of miniature-channel. The selected cross sections for fins were semi-circular, quadrant (bi-directional) and rectangular. Gamma alumina-water and silicon oxide-water nanofluids were utilized as working fluids. The thermal conductivity, viscosity, convective heat transfer coefficient and pressure drop of working fluids are measured. The test facility provided experimental conditions to measure the heat transfer coefficient and pressure drop at different Reynolds numbers ranged between 400 and 1200. KD2 pro property analyzer for thermal conductivity and Brookfield DV3T rheometer for viscosity of nanofluids were applied. Experimental results showed that the efficiency of miniature-channel increases when nanofluid and extended surface are both employed. The highest and lowest values for the heat transfer enhancement belonged to the case of silicon oxide-water and for a miniature-channel with a rectangular fin. The highest thermal-hydraulic performance belonged to the miniature-channel with quadrant-2, rectangular, quadrant-1 and semi-circular fin with silicon oxide/water nanofluid, which was 1.27, 1.26, 1.16 and 1.11, respectively. According to statistical analysis, new correlations are also proposed to predict the Nusselt number and friction factor of various finned miniature-channel. The results of the proposed models are in good agreement with experimental data.
机译:在本作工作中,研究了具有不同纵向翅片的矩形微型通道散热器内各种纳米流体的热和液压性能的优化。响应面方法用于获得微型通道的最佳条件。翅片的所选择的横截面是半圆形的,象限(双向)和矩形。伽玛氧化铝 - 水和氧化硅 - 水纳米流体用作工作流体。测量热导率,粘度,对流传热系数和工作流体的压降。测试设施提供了测量不同雷诺数的传热系数和压力下降的实验条件,其范围为400和1200. KD2 Pro特性分析仪,用于导热系数,用于纳米流体粘度的Brookfield DV3T流变仪。实验结果表明,当纳米流体和扩展表面都采用时,微型通道的效率增加。传热增强的最高和最低值属于氧化硅 - 水的情况和具有矩形翅片的微型通道。最高热液压性能属于具有象限-2,矩形,象限-1和半圆形翅片的微型通道,氧化硅/水纳米流体分别为1.27,1.26,1.16和1.11。根据统计分析,还提出了新的相关性来预测各种翅片微型通道的露珠数和摩擦因子。拟议模型的结果与实验数据吻合良好。

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