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Numerical Study on Thermal-Hydraulic Performance and Entropy Generation of Nanofluid Flow in Channel with Oval Baffles

机译:椭圆形挡板在通道中纳米流体流动熵生成的数值研究

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In the present study, laminar forced convection of nanofluid flow in channel with oval baffles have been numerically investigated. The governing equations in terms of body-fitted coordinates are discretized using finite volume method and then iteratively solved using SIMPLE technique. The dimensionless baffle heights of 0, 0.1, 0.2, 0.3, 0.4 and 0.5 have been considered. SiO2-water nanofluid with nanoparticles volume fraction at 4% and nanoparticles diameters of 30 nm has been considered for Reynolds number ranging from 100 to 1000. The effect of Reynolds number and baffles height on the average Nusselt number, pressure drop, entropy generation and thermal-hydraulic performance have been presented and discussed. Results show that average Nusselt number, pressure drop, entropy generation increase with increasing baffle height and Reynolds number. Moreover, using oval baffles with baffles height of 0.2 or 0.3 (depend on Reynolds number) can be provided the best thermal-hydraulic performance Therefore, using nanofluid instead of traditional heat transfer fluids as well as the using oval baffles inside channels can potentially achieve considerable improvement in thermal performance, which can lead to design more compact heat exchangers.
机译:在本研究中,已经在数值上研究了在通道中纳米流体流动的层流导流。使用有限体积法离散化在体拟合坐标方面的控制方程,然后使用简单的技术迭代地解决。已经考虑了0,0.1,0.2,0.3,0.4和0.5的无量纲挡板高度。具有纳米颗粒体积分数的SiO2-水纳米流体在4 %和30nm的纳米颗粒直径为100至1000的雷诺数。Reynolds数和挡板高度对平均冲击数,压降,熵生成的影响已经提出和讨论了热液压性能。结果表明,平均营养号,压降,熵产生随着挡板高度和雷诺数的增加而增加。此外,可以提供0.2或0.3的椭圆形挡板(取决于Reynolds数),因此可以使用纳米流体代替传统的传热流体以及在通道内使用椭圆形挡板可能达到相当大的热液压性能热性能的提高,可导致设计更紧凑的热交换器。

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