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HEAT TRANSFER AND ENTROPY ANALYSIS OF MAXWELL HYBRID NANOFLUID INCLUDING EFFECTS OF INCLINED MAGNETIC FIELD, JOULE HEATING AND THERMAL RADIATION

机译:麦克风杂交纳米流体的传热和熵分析,包括倾斜磁场,焦耳加热和热辐射的影响

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摘要

In this numerical study, researchers explore the flow, heat trans- fer and entropy of electrically conducting hybrid nanofluid over the horizon- tal penetrable stretching surface with velocity slip conditions at the inter- face. The non-Newtonian fluid models lead to better understanding of flow and heat transfer characteristics of nanofluids. Therefore, non-Newtonian Maxwell mathematical model is considered for the hybrid nanofluid and the uniform magnetic field is applied at an angle to the direction of the flow. The Joule heating and thermal radiation impact are also considered in the simpli- fied model. The governing nonlinear partial differential equations for hybrid Maxwell nanofluid flow, heat transfer and entropy generation are simplified by taking boundary layer approximations and then reduced to ordinary differen- tial equations using suitable similarity transformations. The Keller box scheme is then adopted to solve the system of ordinary differential equations. The Ethylene glycol based Copper Ethylene glycol (Cu-EG) nanofluid and Ferro- Copper Ethylene glycol (Fe_3O_4 Cu-EG) hybrid nanofluids are considered to produce the numerical results for velocity, temperature and entropy profiles as well as the skin friction factor and the local Nusselt number. The main find- ings indicate that hybrid Maxwell nanofluid is better thermal conductor when compared with the conventional nanofluid, the greater angle of inclination of magnetic field offers greater resistance to fluid motion within boundary layer and the heat transfer rate act as descending function of nanoparticles shape factor.
机译:在该数值研究中,研究人员探讨了在地平线 - 缩放拉伸表面上通过速度滑动条件探讨了电导杂交纳米流体的流动,热传递和熵。非牛顿流体模型导致更好地理解纳米流体的流动和传热特性。因此,考虑混合纳米流体的非牛顿麦克斯韦尔数学模型,并且均匀磁场以一定角度施加到流动方向上。在简单的模型中也考虑了焦耳加热和热辐射影响。通过采用边界层近似简化了用于混合麦克风纳米流体流动,传热和熵生成的控制非线性偏微分方程,然后使用合适的相似性转换减少到普通差分方程。然后采用凯勒盒方案来解决常微分方程的系统。基于乙二醇的亚乙二醇(Cu-例如)纳米流体和铁铜乙二醇(Fe_3O_4 Cu-Em)杂种纳米流体被认为是产生速度,温度和熵曲线以及皮肤摩擦因子和皮肤摩擦系数的数值结果当地的纽带。主要的诱导表明,与常规纳米流体相比,杂交麦克风纳米流体是更好的热导体,磁场的倾斜角度具有更大的抗流体运动在边界层内的抗性,并且传热速率是纳米颗粒形状的下降函数因素。

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    College of Electrical and Mechanical Engineering National University of Sciences and Technology Rawalpindi 46070 Pakistan;

    Department of Mathematics Capital University of Science and Technology Islamabad 44000 Pakistan College of Electrical and Mechanical Engineering National University of Sciences and Technology Rawalpindi 46070 Pakistan Department of Mathematics School of Natural Sciences National University of Sciences and Technology Islamabad 44000 Pakistan;

    Department of Mathematics Capital University of Science and Technology Islamabad 44000 Pakistan College of Electrical and Mechanical Engineering National University of Sciences and Technology Rawalpindi 46070 Pakistan Department of Mathematics School of Natural Sciences National University of Sciences and Technology Islamabad 44000 Pakistan;

    Department of Mathematics Capital University of Science and Technology Islamabad 44000 Pakistan College of Electrical and Mechanical Engineering National University of Sciences and Technology Rawalpindi 46070 Pakistan Department of Mathematics School of Natural Sciences National University of Sciences and Technology Islamabad 44000 Pakistan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hybrid nanouids; nanouids; Maxwell fluid; shape factor; entropy;

    机译:杂交纳米UID;纳米UID;麦克风液;形状因子;熵;

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