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Enhancement heat transfer characteristics in the channel with Trapezoidal rib-groove using nanofluids

机译:使用纳米流体的梯形肋槽增强了通道中的传热特性

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摘要

Numerical study of heat transfer due to turbulent flow of nanofluids through rib-groove channel have been investigated. The continuity, momentum and energy equations are solved by the finite volume method (FVM). Four different rib-groove shapes have been examined. Four different types of nanoparticles, Al2O3, CuO, SiO2, and ZnO with different volumes fractions in the range of 1-4% and different nanoparticle diameter in the range of 25-70 nm, have been also studied. The computations are performed under constant temperature over a range of Reynolds number (Re) 10,000-40,000. Results indicate that the Trapezoidal with increasing height in the flow direction rib-trapezoidal groove has the best heat transfer rate and high Nusselt number. It is also found that the SiO2 - nanofluid has the highest value of Nusselt number in comparison with the other type of nanofluids. The Nusselt number increases as the volume fraction increases and it decreases as the nanoparticle diameter increases. The present study shows that these Trapezoidal rib-groove using nanofluids have the potential to dramatically increase heat transfer characteristics and thus can be good candidates for the development of efficient heat exchanger device.
机译:研究了由于纳米流体湍流通过肋-槽通道的传热的数值研究。连续性,动量和能量方程式通过有限体积法(FVM)求解。已经检查了四种不同的肋槽形状。还研究了四种不同类型的纳米颗粒,Al2O3,CuO,SiO2和ZnO,它们的体积分数在1-4%范围内,而纳米粒径在25-70 nm范围内。在恒定温度下在雷诺数(Re)10,000-40,000的范围内执行计算。结果表明,梯形梯形在流向肋-梯形槽中的高度增加,具有最佳的传热速率和较高的努塞尔特数。还发现与其他类型的纳米流体相比,SiO 2-纳米流体具有最高的努塞尔数值。努塞尔数随体积分数的增加而增加,随纳米粒子直径的增加而减小。本研究表明,这些使用纳米流体的梯形肋状沟槽具有显着提高传热特性的潜力,因此可以成为开发高效热交换器装置的良好候选者。

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