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首页> 外文期刊>Advances in Mechanical Engineering >Numerical investigation of magnetohydrodynamic flow and heat transfer of copper–water nanofluid in a channel with non-parallel walls considering different shapes of nanoparticles:
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Numerical investigation of magnetohydrodynamic flow and heat transfer of copper–water nanofluid in a channel with non-parallel walls considering different shapes of nanoparticles:

机译:考虑不同纳米粒子形状的非平行壁通道中铜-水纳米流体磁流体动力流动和传热的数值研究:

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This article presents the magnetohydrodynamic flow and heat transfer of water-based nanofluid in divergent and convergent channels. Equations governing the flow are transformed to a set of ordinary differential equations by employing suitable similarity transforms. Resulting system is solved using a strong numerical procedure called Runge–Kutta–Fehlberg method. Results are compared with existing solutions available in the literature and an excellent agreement is seen. Three shapes of nanoparticles, namely, platelet-, cylinder-, and brick-shaped particles, are considered to perform the analysis. Influence of emerging parameters such as channel opening, Reynolds number, magnetic parameter, Eckert number, and the nanoparticle volume fraction are heighted with the help of graphs coupled with comprehensive discussions. The magnetic field can be used as a controlling parameter to reduce the backflow regions for the divergent channel case. Temperature of the fluid can be controlled with the help of strong magnet...
机译:本文介绍了发散和会聚通道中水基纳米流体的磁流体动力学流动和热传递。通过采用适当的相似性变换,将控制流量的方程式转换为一组常微分方程式。结果系统使用称为Runge–Kutta–Fehlberg方法的强数值程序求解。将结果与文献中提供的现有解决方案进行比较,并得出了很好的协议。考虑使用三种形状的纳米颗粒,即片状,圆柱状和砖状颗粒进行分析。借助图表和综合讨论,可以提高新兴参数的影响,例如通道开口,雷诺数,磁参数,埃克特数和纳米颗粒体积分数。磁场可以用作控制参数,以减少发散通道情况下的回流区域。流体的温度可以借助强磁体来控制。

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