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Simulation of copper-water nanofluid in a microchannel in slip flow regime using the lattice Boltzmann method with heat flux boundary condition

机译:用热通量边界条件用格子玻璃晶晶晶晶晶体法仿真微通道铜水纳米流体的仿真

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Laminar forced convection heat transfer of water-Cu nanofluids in a microchannel is studied using the double population Thermal Lattice Boltzmann method (TLBM). The entering flow is at a lower temperature compared to the microchannel walls. The middle section of the microchannel is heated with a constant and uniform heat flux, simulated by means of the counter slip thermal energy boundary condition. Simulations are performed for nanoparticle volume fractions equal to 0.00%, 0.02% and 0.04% and slip coefficient equal to 0.001, 0.01 and 0.1. Reynolds number is equal to 1, 10 and 50. The model predictions are found to be in good agreement with earlier studies. Streamlines, isotherms, longitudinal variations of Nusselt number and slip velocity as well as velocity and temperature profiles for different cross sections are presented. The results indicate that LBM can be used to simulate forced convection for the nanofluid micro flows. They show that the microchannel performs better heat transfers at higher values of the Reynolds number. For all values of the Reynolds considered in this study, the average Nusselt number increases slightly as the solid volume fraction increases and the slip coefficient increases. The rate of this increase is more significant at higher values of the Reynolds number.
机译:使用双人群体热晶格Boltzmann方法(TLBM)研究了微通道中水-Cu纳米流体的层压型对流热传递。与微通道墙相比,进入流量处于较低的温度。微通道的中间部分用恒定和均匀的热通量加热,通过计数器滑动热能边界条件模拟。对于等于0.00%,0.02%和0.04%的纳米颗粒体积级分和净化系数等等于0.001,0.01和0.1的仿真。雷诺数等于1,10和50.发现模型预测与早期研究吻合良好。呈现了不同横截面的流动线,等温机,营养数和滑动速度的纵向变化以及不同横截面的速度和温度曲线。结果表明,LBM可用于模拟纳米流体微流量的强制对流。他们表明微通道在雷诺数的较高值下执行更好的热量转移。对于本研究中考虑的雷诺的所有值,随着固体体积分数的增加并且滑移系数增加,平均露珠数略微增加。这种增加的速度在雷诺数的较高值下更为显着。

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