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首页> 外文期刊>Case Studies in Thermal Engineering >Thermal and hydraulic characteristics of turbulent nanofluids flow in trapezoidal-corrugated channel: Symmetry and zigzag shaped
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Thermal and hydraulic characteristics of turbulent nanofluids flow in trapezoidal-corrugated channel: Symmetry and zigzag shaped

机译:梯形波纹通道中湍流纳米流体的热力和水力特性:对称和锯齿形

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Thermal and hydraulic characteristics of turbulent nanofluids flow in a trapezoidal-corrugated channel are numerically investigated by implementing the finite volume method to solve the governing equations. The adiabatic condition for the straight walls, constant heat flux for the corrugated walls, and two configurations of trapezoidal channel symmetry and zigzag shape were examined. The performance of a trapezoidal-corrugated channel with four different kinds of nanofluids ( ZnO, Al2O3, CuO, and SiO2), with four various nanoparticle volume fractions of 2%, 4%, 6% and 8% using water as base fluid is thoroughly analyzed and discussed. The nanoparticles diameter, another parameter is taken into consideration, varied from 20 to 80?nm. Results show that the symmetry profile of trapezoidal-corrugated channel has a great effect on the thermal performance compared with a straight profile and zigzag profile. The Nusselt number dropped as the nanoparticle diameter grew; however, it grew as the nanoparticle volume fraction and Reynolds number dropped. The best improvement in heat transfer among the nanofluids types was by SiO2-water. The present investigation uncovers that these trapezoidal symmetry-corrugated channels have favorable circumstances by utilizing nanofluids and in this manner fill in as a promising contender for incorporation in more compact heat exchanger devices.
机译:通过采用有限体积法求解控制方程,数值研究了梯形波纹通道中湍流纳米流体的热力和水力特性。检查了直壁的绝热条件,波纹壁的恒定热通量以及梯形通道对称和锯齿形的两种构造。使用水作为基础流体,具有四种不同的纳米流体(ZnO,Al2O3,CuO和SiO2),具有四个不同的纳米颗粒体积分数(分别为2%,4%,6%和8%)的梯形波纹通道,其性能是非常出色的分析和讨论。考虑到另一个参数,纳米粒子的直径在20至80?nm之间变化。结果表明,与直线形和锯齿形相比,梯形波纹形通道的对称轮廓对热性能影响很大。随着纳米粒子直径的增加,Nusselt数下降。然而,随着纳米颗粒体积分数和雷诺数的下降,它增长了。纳米流体类型中传热的最佳改进是SiO2-水。本研究发现,通过使用纳米流体,这些梯形对称波纹状通道具有良好的环境,并且以此方式填充为并入更紧凑的热交换器设备的有希望的竞争者。

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