首页> 外文期刊>International journal of numerical methods for heat & fluid flow >Entropy generation of mixed convection of SWCNT-water nanofluid filled an annulus with a rotating cylinder and porous lining under LTNE
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Entropy generation of mixed convection of SWCNT-water nanofluid filled an annulus with a rotating cylinder and porous lining under LTNE

机译:SWCNT水纳米流体混合对流的熵生成填充了旋转圆筒的环形圆柱和LOTNE下的多孔衬里

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Purpose - The purpose of this study is to numerically analyze the mixed convection and entropy generation in an annulus with a rotating heated inner cylinder for single-wall carbon nanotube (SWCNT)-water nanofluid flow using local thermal nonequilibrium (LTNE) model. An examination of the system behavior is presented considering the heat-generating solid phase inside the porous layer partly filled at the inner surface of the outer cylinder. Design/methodology/approach - The discretized governing equations for nanofluid and porous layer by means of the finite volume method are solved by using the SIMPLE algorithm. Findings - It is found that the buoyancy force and rotational effect have an important impact on the change of the strength of streamlines and isotherms for nanofluid flow. The minimum average Nusselt number on the inner cylinder is obtained at Ra$_E$ = 10$^4$, and the minimum total entropy generation is found at Re = 400 for given parameters. The entropy generation minimization is determined in case of different nanoparticle volume fractions. It is observed that at the same external Rayleigh numbers, the LTNE condition obtained with internal heat generation is very different from that without heat generation. Originality/value - To the best of the authors' knowledge, there is no previous paper presenting mixed convection and entropy generation of SWCNT-water nanofluid in a porous annulus under LTNE condition. The addition of nanoparticles to based fluid leads to a decrease in the value of minimum total entropy generation. Thus, using nanofluid has a significant role in the thermal design and optimization of heat transfer applications.
机译:目的 - 本研究的目的是在用局部热非纤维(LTNE)模型的单壁碳纳米管(SWCNT)-WALL纳米流体(SWCNT)模型的单壁碳纳米管(SWCNT)-WATER纳米流体流动的环中进行数值分析混合对流和熵生成。考虑到部分填充在外圆筒的内表面的多孔层内部的发热固相提出了对系统行为的检查。设计/方法/方法 - 通过使用简单的算法解决了借助于有限体积法的纳米流体和多孔层的离散控制方程。研究结果 - 发现浮力力和旋转效应对石膏流动的流线和等温度的强度变化具有重要影响。内筒上的最小平均纽带号在RA $ _E $ = 10 $ ^ 4 $中获得,并且在RE = 400处找到最小总熵生成,用于给定参数。在不同的纳米颗粒体积级分的情况下确定熵产生最小化。观察到,在相同的外部瑞利数中,用内部发热获得的LTNNE情况与没有发热的情况非常不同。原创性/价值 - 据作者所知,之前没有以前的纸张在Ltne病症下在多孔环中呈现的混合对流和SWCNT水纳米流体的熵产生。将纳米颗粒加入基于的流体导致最小总熵产生的值降低。因此,使用纳米流体在热传递应用的热设计和优化中具有重要作用。

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