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首页> 外文期刊>Numerical Heat Transfer, Part A. Application: An International Journal of Computation and Methodology >Numerical simulation of the magnetic field and Joule heating effects on force convection flow through parallel-plate microchannel in the presence of viscous dissipation effect
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Numerical simulation of the magnetic field and Joule heating effects on force convection flow through parallel-plate microchannel in the presence of viscous dissipation effect

机译:粘性耗散效应存在下平行板微通道力对流流动磁场和焦耳热效应的数值模拟

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The effects of Joule heating, Hartman, Brinkman, and Reynolds numbers on the flow pattern and thermal characteristics of force convection flow through a parallel-plate microchannel are investigated in various nanoparticles volume fraction. Water-Al2O3 is considered as the working nanofluid while taking viscous dissipation effect (VDE) into account. The mid-section of the microchannel is heated with a constant uniform heat flux and influenced by a magnetic field with a uniform strength. The effective thermal conductivity and viscosity of nanofluid are calculated through a new correlation in which the influence of Brownian motion is considered. A control volume finite different scheme, along with the SIMPLE algorithm, is adopted to conduct the numerical analyses and solve the discrete equations. Contour plots of streamlines and isotherms are presented to graphically display the impact of the investigated variables. Furthermore, the values of the Nusselt number for the minimum temperature and maximum velocity are calculated and presented through figures. The results show that all of the Brinkman, Joule, nanofluid concentration, and Hartmann numbers have decreasing effect on the heat transfer. The conclusion is supported by the fact that all the aforementioned factors increase the temperature throughout the flow field. The higher the flow field temperature, the lower the heat transfer from the wall. Higher Brinkman number leads to the friction intensification between flow layers due to considering VDE. It can be said about the Joule heating that, since this term has an inverse relation with the squared velocity, increase in Joule number is followed by a reduction of heat transfer from the walls. Also, an increase in the nanofluid concentration increases the temperature throughout the microchannel leading to heat transfer deterioration.
机译:在各种纳米粒子体积分数中研究了焦耳加热,哈特曼,Brinkman和雷诺数对通过平行板微通道的力的流动模式和热特性的影响。水 - AL2O3被认为是工作纳米流体,同时考虑粘性耗散效果(VDE)。微通道的中间部分用恒定的均匀热通量加热,并受磁场的影响,具有均匀强度。纳米流体的有效导热率和粘度通过新的相关性来计算,其中考虑了褐色运动的影响。采用控制量有限不同的方案,以及简单的算法进行数值分析并解决离散方程。简化和等温线的轮廓图以图形显示所研究的变量的影响。此外,通过附图计算并呈现最小温度和最大速度的泡沫数量的值。结果表明,所有的Brinkman,焦耳,纳米流体浓度和Hartmann号都对传热产生了降低的影响。结论是支持所有上述因素增加整个流场的温度。流场温度越高,从墙壁的热传递越低。由于考虑VDE,更高的Brinkman号码导致流程层之间的摩擦强化。可以说若干焦耳加热,因为该术语与平方速度的反向关系,因此焦耳数的增加之后是从墙壁上减少热传递。而且,纳米流体浓度的增加会使整个微通道的温度增加,导致传热劣化。

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