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Hybrid nanofluid flow through an exponentially stretching/ shrinking sheet with mixed convection and Joule heating

机译:通过混合对流和焦耳加热的指数拉伸/收缩板流动杂交纳米流体流动

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Purpose - This study aims to investigate the flow and heat transfer of a hybrid nanofluid through an exponentially stretching/shrinking sheet along with mixed convection and Joule heating. The nanoparticles alumina (Al_2O_3) and copper (Cu) are suspended into a base fluid (water) to form a new kind of hybrid nanofluid (Al_2O_3-Cu/water). Also, the effects of constant mixed convection parameter and Joule heating are considered. Design/methodology/approach - The governing partial differential equations are transformed into ordinary differential equations (ODEs) using appropriate similarity transformations. The transformed nonlinear ODEs are solves using the bvp4c solver available in MATLAB software. A comparison of the present results shows a good agreement with the published results. Findings - Dual solutions for hybrid nanofluid flow obtained for a specific range of the stretching/shrinking parameter values. The values of the skin friction coefficient increases but the local Nusselt number decreases for the first solution with the increasing of the magnetic parameter. Enhancing copper volume fraction and Eckert number reduces the surface temperature, which intimates the decrement of heat transfer rate for the first and second solutions for the stretching/shrinking sheet. In detail, the first solution results show that when the Eckert number increases as 0.1,0.4 and 0.7 at A = 1.5, the temperature variations reduced to 10.686840,10.671419 and 10.655996. While in the second solution, keeping the same parameters temperature variation reduced to 9.750777, 9.557349 and 9.364489, respectively. On the other hand, the results indicate that the skin friction coefficient increases with copper volume fraction. This study shows that the thermal boundary layer thickness rises due to the rise in the solid volume fraction. It is also observed that the magnetic parameter, copper volume fraction and Eckert number widen the range of the stretching/shrinking parameter for which the solution exists. Practical implications - In practice, the investigation on the flow and heat transfer of a hybrid nanofluid past an exponentially stretching/shrinking sheet with mixed convection and Joule heating is crucial and useful. The problems related to hybrid nanofluid have numerous real-life and industrial applications, such as microelectronics, manufacturing, naval structures, nuclear system cooling, biomedical and drug reduction. Originality/value - In specific, this study focuses on increasing thermal conductivity using a hybrid nanofluid mathematical model. The novelty of this study is the use of natural mixed convection and Joule heating in a hybrid nanofluid. This paper can obtain dual solutions. The authors declare that this study is new, and there is no previous published work similar to the present study.
机译:目的 - 本研究旨在通过指数拉伸/收缩片以及混合对流和焦耳加热来研究杂种纳米流体的流动和热传递。将纳米颗粒氧化铝(Al_2O_3)和铜(Cu)悬浮到基础流体(水)中以形成新种类的杂交纳米流体(Al_2O_3-Cu /水)。而且,考虑了恒定混合对流参数和焦耳加热的影响。设计/方法/方法 - 使用适当的相似性转换将控制部分微分方程转换为常微分方程(ODES)。转换的非线性ODES使用MATLAB软件中提供的BVP4C求解器来解决。对现有结果的比较表现出与已发表的结果的良好一致。研究结果 - 用于杂交纳米流体流动的双溶液,其用于拉伸/收缩参数值的特定范围。皮肤摩擦系数的值增加,但是随着磁参数的增加,局部露天数减少了第一溶液。增强铜体积分数和Eckert数降低了表面温度,其内容为拉伸/收缩片的第一和第二溶液的传热速率的减少。详细地,第一解决方案结果表明,当Eckert数量在A = 1.5时增加0.1,0.4和0.7时,温度变化降低到10.686840,10.671419和10.655996。在第二种解决方案中,保持相同的参数温度变化分别减少到9.750777,9.557349和9.364489。另一方面,结果表明皮肤摩擦系数随铜体积分数而增加。该研究表明,由于固体体积分数的升高,热边界层厚度上升。还观察到,磁性参数,铜体积分数和Eckert数扩大了解决方案的拉伸/收缩参数的范围。实际意义 - 在实践中,对杂交纳米流体的流动和传热研究通过混合对流和焦耳加热的指数拉伸/收缩片是至关重要的,有用的。与杂交纳米流体有关的问题具有许多现实生活和工业应用,如微电子,制造,海军结构,核系统冷却,生物医学和药物减少。特定原创性/价值 - 本研究侧重于使用杂交纳米流体数学模型提高导热率。本研究的新颖性是在杂交纳米流体中使用自然混合对流和焦耳加热。本文可以获得双解决方案。作者声明这项研究是新的,并且没有与本研究类似的公开工作。

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