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Mixed convection and stability analysis of stagnation-point boundary layer flow and heat transfer of hybrid nanofluids over a vertical plate

机译:垂直板上滞留点边界层流动和杂交纳米流体传热的混合对流与稳定性分析

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Purpose This study aims to study the mixed convection flow and heat transfer of Al_2O_3-Cu/water hybrid nanofluid over a vertical plate. Governing equations for conservation of mass, momentum and energy for the hybrid nanofluid over a vertical flat plate are introduced. Design/methodology/approach - The similarity transformation approach is used to transform the set of partial differential equations into a set of non-dimensional ordinary differential equations. Finite-deference with collocation method is used to integrate the governing equations for the velocity and temperature profiles. Findings The results show that dual solutions exist for the case of opposing flow over the plate. Linear stability analysis was performed to identify a stable solution. The stability analysis shows that the lower branch of the solution is always unstable, while the upper branch of the solution is always stable. The results of boundary layer analysis are reported for the various volume fractions of composite nanoparticles and mixed convection parameter. The outcomes show that the composition of nanoparticles can notably influence the boundary layer flow and heat transfer profiles. It is also found that the trend of the variation of surface skin friction and heat transfer for each of the dual solution branches can be different. The critical values of the mixed convection parameter, A, where the dual solution branches joint together, are also under the influence of the composition of hybrid nanoparticles. For instance, assuming a total volume fraction of 5 per cent for the mixture of Al_2O_3 and Cu nanoparticles, the critical value of mixing parameter of A changes from -3.1940 to -3.2561 by changing the composition of nanofluids from Al_2O_3 (5 per cent) + Cu (0%) to Al_2O_3 (2.5%) + Cu (2.5 per cent). Originality/value - The mixed convection stability analysis and heat transfer study of hybrid nanofluids for a stagnation-point boundary layer flow are addressed for the first time. The introduced hybrid nanofluid model and similarity solution are new and of interest in both mathematical and physical points of view.
机译:目的本研究旨在研究垂直板上的Al_2O_3-Cu /水杂化纳米流体的混合对流流和传热。介绍了垂直平板上的杂种纳米流体的质量,动量和能量保护方程。设计/方法/方法 - 相似性转换方法用于将局部微分方程集转换为一组非维常微分方程。使用搭配方法的有限缩小用于集成用于速度和温度分布的控制方程。结果表明,在板上相对流动的情况下存在双解决方案。进行线性稳定性分析以鉴定稳定的溶液。稳定性分析表明,溶液的下部分支始终不稳定,而溶液的上部分支始终是稳定的。报告了对复合纳米颗粒的各种体积分数和混合对流参数的边界层分析的结果。结果表明,纳米颗粒的组成可以恒大地影响边界层流动和传热型材。还发现,对于每个双溶液分支的表面皮肤摩擦和传热变化的趋势可以是不同的。混合对流参数的临界值A,其中双溶液分支在一起,在杂化纳米粒子的组合物的影响下也是在杂交纳米颗粒的影响下。例如,假设Al_2O_3和Cu纳米颗粒的混合物的总体积分数为5%,通过改变来自Al_2O_3(5%)+的纳米流体的组成,从-3.1940至-3.2561的变化的混合参数的临界值。铜(0%)至Al_2O_3(2.5%)+ Cu(2.5%)。原始性/值 - 第一次解决了用于停滞点边界层流动的混合纳米流体的混合对流稳定性分析和传热研究。引入的杂交纳米流体模型和相似性解决方案是对数学和物理观点的新的和感兴趣的。

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