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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >Appraising conjugate heat transfer, heatlines visualization and entropy generation of Ag-MgO/H_2O hybrid nanofluid in a partitioned medium
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Appraising conjugate heat transfer, heatlines visualization and entropy generation of Ag-MgO/H_2O hybrid nanofluid in a partitioned medium

机译:在分区介质中评估缀合物传热,换热和Ag-MgO / H_2O杂交纳米流体的熵和熵产生

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Purpose - This paper aims to perform the lattice Boltzmann simulation of conjugate natural convection heat transfer, heat flow visualization via heatlines approach and entropy generation in a partitioned medium filled with Ag-MgO (15-85%)/water. Design/methodology/approach - The lattice Boltzmann method (LBM) is used to predict the dynamic and thermal behaviors. Experimental correlations for dynamic viscosity and thermal conductivity versus solid volume fraction are used. The study is conducted for the ranges of Rayleigh number 10~3 ≤Ra≤ 10~6, the partitioner thickness 0.01 ≤ 5 ≤ 0.9, its position 0.15 ≤ X_s ≤ 0.85 and the hybrid nano-suspensions volume fraction 0% ≤ Φ ≤2%. Findings - The effects of varying of controlling parameters on the convective flow patterns, temperature contours, heat transfers, the heatlines and the entropy generation are presented. It has been found that the maximum rate of heat transfer enhancement occurs for low Ra numbers (10~3) and is close to 13.52%. The solid thickness d and its horizontal position X_s have a substantial influence on the heat transfer rate, flow structure, heatline, total entropy generation and Bejan number. Besides, the maximum heat transfer is detected for high Ra and δ ≈ 1 and the percentage of augmentation is equal to 65.55 % for Φ = 2 %. According to the horizontal position, the heat transfer remains invariant for Ra = 10~3 and takes a maximum value near the active walls for Ra≥ 10~4. The total entropy generation increases with Ra and decreases with Φ for Ra = 10~6. The increase of Φ from 0 to 2% leads to a reduction in close to 40.76%. For this value of Ra, the entropy is the maximum for δ = 0.4 and X_s = 0.35 and X_s = 0.65%. Moreover, as the Ra increases the Bejan number undergoes a decrease. The Bejan number is the maximum for Ra = 103 independently to S and X_s. The superior thermal performance manifests at low Ra and high value of 5 independently to the positions of the conducting body. Originality/value - The originality of this paper is to analyze the hybrid nano-additive effects on the two-dimensional conjugate natural convection in a partitioned medium using the LBM. The experimental correlations used for the effective thermal conductivity and dynamic viscosity give credibility to our study. Different approaches such as heatlines and entropy generation are used.
机译:目的 - 本文旨在执行缀合物自然对流传热的晶格Boltzmann模拟,通过热量可视化通过换热和熵产生,在填充有Ag-MgO(15-85%)/水的分区介质中。设计/方法/方法 - 格子Boltzmann方法(LBM)用于预测动态和热行为。使用动态粘度和导热率与固体体积分数的实验相关性。该研究进行了瑞利数10〜3≤RA≤10〜6的范围,分配器厚度0.01≤5≤0.9,其位置0.15≤x_s≤0.85,杂交纳米悬浮体积分数0%≤φ≤2 %。调查结果 - 提出了对流流动模式,温度轮廓,热传输,热线和熵生成的不同控制参数的影响。已经发现,低RA数(10〜3)发生最大的传热增强速率,并且接近13.52%。固体厚度D及其水平位置X_S对传热速率,流动结构,热线,全熵生成和BEJAN数具有重大影响。此外,对于高RA和δ≈1检测到最大传热,并且增强的百分比等于φ= 2%的65.55%。根据水平位置,传热保持不变的RA = 10〜3,并且在有源壁附近的最大值为Ra≥10〜4。总熵生成随RA增加,并用RA = 10〜6的φ降低。从0到2%的增加导致减少接近40.76%。对于RA的此值,熵是Δ= 0.4和X_S = 0.35和X_S = 0.65%的最大值。此外,由于RA增加Bejan号码经历减少。 BEJAN号码是RA = 103的最大值,独立于S和X _s。优异的热性能在低RA和高值5的情况下独立于导电体的位置。原创性/值 - 本文的原创性是使用LBM分析对分区介质中的二维缀合物自然对流的杂化纳米添加剂。用于有效导热性和动态粘度的实验相关性可信度对我们的研究提供可信度。使用不同的方法,例如热量和熵生成。

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