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Hydrodynamic and thermal analysis of water, ethylene glycol and water-ethylene glycol as base fluids dispersed by aluminum oxide nano-sized solid particles

机译:水,乙二醇和水 - 乙二醇的流体动力学和热分析,作为氧化铝纳米尺寸固体颗粒分散的基础流体

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Purpose - The purpose of this paper is to carry out a hydrodynamic and thermal analysis of turbulent forced-convection flows of pure water, pure ethylene glycol and water-ethylene glycol mixture, as base fluids dispersed by AI2O3 nano-sized solid particles, through a constant temperature-surfaced rectangular cross-section channel with detached and attached obstacles, using a computational fluid dynamics (CFD) technique. Effects of various base fluids and different AI2O3 nano-sized solid particle solid volume fractions with Reynolds numbers ranging from 5,000 to 50,000 were analyzed. The contour plots of dynamic pressure, stream-function, velocity-magnitude, axial velocity, transverse velocity, turbulent intensity, turbulent kinetic energy, turbulent viscosity and temperature fields, the axial velocity profiles, the local and average Nusselt numbers, as well as the local and average coefficients of skin friction, were obtained and investigated numerically. Design/methodology/approach - The fluid flow and temperature fields were simulated using the Commercial CFD Software FLUENT. The same package included a preprocessor GAMBIT which was used to create the mesh needed for the solver. The RANS equations, along with the standard k-epsilon turbulence model and the energy equation were used to control the channel flow model. All the equations were discretized by the finite volume method using a two-dimensional formulation, using the semi-implicit method for pressure-linked equations pressure-velocity coupling algorithm. With regard to the flow characteristics, the interpolation QUICK scheme was applied, and a second-order upwind scheme was used for the pressure terms. The under-relaxation was changed between the values 0.3 and 1.0 to control the update of the computed variables at each iteration. Moreover, various grid systems were tested to analyze the effect of thegrid size on the numerical solution. Then, the solutions are said to be converging when the normalized residuals are smaller than 10-12 and 10-9 for the energy equation and the other variables, respectively. The equations were iterated by the solver till it reached the needed residuals or when it stabilized at a fixed value. Findings - The result analysis showed that the pure ethylene glycol with AI2O3 nanoparticles showed a significant heat transfer enhancement, in terms of local and average Nusselt numbers, compared with other pure or mixed fluid-based nanofluids, with low-pressure losses in terms of local and average skin friction coefficients. Originality/value - The present research ended up at interesting results which constitute a valuable contribution to the improvement of the knowledge basis of professional work through research related to turbulent flow forced-convection within channels supplied with obstacles, and especially inside heat exchangers and solar flat plate collectors.
机译:目的 - 本文的目的是开展纯水,纯乙二醇和水 - 乙二醇混合物的湍流强制对流流动的流体动力和热分析,作为由Ai2O3纳米尺寸固体颗粒分散的基础流体,通过A使用计算流体动力学(CFD)技术,具有拆卸和附着障碍的恒温矩形横截面通道。分析了各种基础流体和不同Ai2O3纳米大小固体颗粒固体体积分数的影响,雷诺数为5,000至50,000。动态压力,流函数,速度 - 幅度,轴向速度,横向速度,湍流强度,湍流动能,湍流粘度和温度场,轴向速度谱,局部和平均露天数,以及获得局部和平均皮肤摩擦系数,并在数值上进行研究。设计/方法/方法 - 使用商业CFD软件流畅的流体流动和温度场。相同的包包括一个预处理器Gambit,用于创建求解器所需的网格。 RAN方程以及标准K-epsilon湍流模型和能量方程用于控制通道流模型。使用二维配方的有限体积法离散所有等式,使用二维配方,使用半隐含方法,用于压力连接方程压力 - 速度耦合算法。关于流动特性,应用了插值快速方案,并且使用二阶UPUND方案用于压力术语。在值0.3和1.0之间更改欠松以控制每个迭代时计算计算变量的更新。此外,测试了各种电网系统以分析TheGrid尺寸对数值溶液的影响。然后,当归一化残差小于10-12和10-9的能量方程和其他变量分别时,据说该解决方案分别是会聚。通过求解器迭代方程,直到它达到所需的残留物或者在固定值稳定时达到。结果 - 结果分析表明,与局部纯净或混合的流体的纳米流体相比,纯乙二醇与局部和平均营养数相比,纯乙二醇显示出显着的传热增强,与局部纯净的流体的纳米流体相比,局部具有低压损失和平均皮肤摩擦系数。原创性/价值 - 目前的研究最终得到了有趣的结果,这构成了通过与障碍物渠道内的湍流流量强制对流有关的研究来改善专业工作的知识基础的宝贵贡献,尤其是换热器和太阳能平板板块收藏家。

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