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Shape effects of Copper-Oxide (CuO) nanoparticles to determine the heat transfer filled in a partially heated rhombus enclosure: CVFEM approach

机译:氧化铜(CuO)纳米颗粒的形状效应,以确定填充在部分加热的菱形外壳中的热传递:CVFEM方法

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摘要

In this article, shape effects of copper-Oxide are analyzed for heat transfer characteristics within the partially heated rhombus enclosure. Additionally, a circular barrier is that have three diverse constraints (adiabatic, cold and hot) is placed at the center of the rhombus. Water is used as a base fluid to constitute the working nanofluid (CuO-water). Heat transfer within the enclosure happens due to a differential temperature at the cavity walls. The governing partial differential equations include conservation of energy, momentum and mass which are numerically solved via CVFEM. The study concludes that heat transfer rate is ascended owing to ascendant in Rayleigh number and descended owing to ascendant in nanoparticles volume fraction. The study further discloses that the maximum heat transfer rate is ascended owing to ascendant in nanoparticles shape factor. In order to determine the stream function and isotherms, various physical domain has been selected for each emerging parameter such as nanoparticles' shape factor, Rayleigh number, and nanoparticle volume fraction. It is concluded that the heat transfer rate is maximum using Platelet shaped nanoparticles.
机译:在本文中,分析了氧化铜的形状效应,以了解部分加热的菱形外壳内的传热特性。此外,圆形障碍物位于菱形的中心,具有三个不同的约束(绝热,冷和热)。水被用作构成工作纳米流体的基础流体(CuO-水)。外壳内的热传递是由于型腔壁处的温度不同而发生的。支配的偏微分方程包括能量守恒,动量守恒和质量守恒,它们通过CVFEM数值求解。研究得出的结论是,传热速率由于瑞利数的增加而上升,而由于纳米颗粒体积分数的上升而下降。该研究进一步公开了,由于纳米颗粒形状因子中的上升,最大传热速率上升。为了确定流函数和等温线,已为每个新兴参数选择了各种物理域,例如纳米粒子的形状因子,瑞利数和纳米粒子的体积分数。结论是使用血小板形纳米颗粒时传热速率最大。

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