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首页> 外文期刊>Chemical Engineering and Processing >Heat transfer intensification using CuO-water nanofluid in a finned capsule-P shaped heat exchanger using lattice Boltzmann method
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Heat transfer intensification using CuO-water nanofluid in a finned capsule-P shaped heat exchanger using lattice Boltzmann method

机译:使用Lattice Boltzmann方法在翅片胶囊-P形热交换器中使用Cuo-Ply纳米流体的热传递强化

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摘要

The natural convection fluid flow and heat exchanger in a capsule-shape heat exchanger is investigated. The lattice Boltzmann method is used to simulate the fluid flow and heat transfer in the enclosure. To predict the thermal conductivity and dynamic viscosity of CuO-water nanofluid, the KKL-model is utilized which is able to apply the Brownian motion of the nanoparticles. In order to carry out a comprehensive analysis, the heatline visualization and entropy generation are used to detect the path of heat energy and find the optimum conditions, respectively. The influences of different effectual parameters such as Rayleigh number(10(3) R-a 10(6)), nanoparticle concentration(0 phi 0.04), different thermal arrangements of implanted fins on the studied cases such as fluid flow, heat transfer, heat transfer irreversibility map, fluid friction irreversibility map, local Nusselt variation map, average Nusselt number and the total entropy generation are investigated comprehensively.
机译:研究了胶囊形式热交换器中的自然对流流体流动和热交换器。格子Boltzmann方法用于模拟外壳中的流体流动和传热。为了预测CuO-水纳米流体的导热率和动态粘度,利用KKL模型,其能够施加纳米颗粒的褐色运动。为了进行综合分析,使用热线可视化和熵生成来检测热能的路径并分别找到最佳条件。不同有效参数如瑞利数(10(3)& 10(6)),纳米颗粒浓度(0& 0.04)的影响,在研究的情况下,植入翅片的不同热布置,例如全面研究流体流动,传热,传热不可逆转图,流体摩擦不可逆转图,局部露天变化图,平均露天度和总熵生成。

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