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Investigating the Effect of Line Dipole Magnetic Field on Hydrothermal Characteristics of a Temperature-Sensitive Magnetic Nanofluid Using Two-Phase Simulation

机译:利用两相模拟研究线偶极磁场对温度敏感型磁性纳米流体水热特性的影响

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摘要

Hydrothermal characteristics of a temperature-sensitive magnetic nanofluid between two parallel plates are investigated in the presence of magnetic field produced by one or multiple line dipole(s) using the two-phase mixture model. As the nanofluid reaches the region where the magnetic field is applied, a rotation is developed due to the dependency of magnetization on temperature. This can lead to mixing in the flow and more uniform distribution of temperature due to the disturbance caused in the boundary layer, and consequently, enhancement in convective heat transfer. The results indicate that the disturbance in boundary layer adjacent to the lower wall is more significant than the upper wall. By application of the magnetic field, the convective heat transfer increases locally for both walls. Due to the intensified mixing, a sudden pressure drop occurs when the fluid reaches the region where the magnetic field is applied. For greater magnetic field strengths and lower Reynolds numbers, the improvement in convective heat transfer is more significant. For small magnetic field strengths, the effect of applying magnetic field on the upper wall is much smaller than that on the lower wall; however, this effect becomes almost the same for both walls at great magnetic field strengths.
机译:使用两相混合模型,在存在一个或多个线偶极子产生的磁场的情况下,研究了两个平行板之间的热敏磁性纳米流体的水热特性。当纳米流体到达施加磁场的区域时,由于磁化强度对温度的依赖性而产生旋转。由于在边界层中引起的扰动,这可能导致流中的混合以及温度的更均匀分布,从而导致对流传热的增强。结果表明,与下壁相邻的边界层的扰动比上壁大。通过施加磁场,两壁的对流热传递局部增加。由于加强的混合,当流体到达施加磁场的区域时,压力会突然下降。对于更大的磁场强度和更低的雷诺数,对流传热的改善更为显着。对于较小的磁场强度,在上壁上施加磁场的作用要比在下壁上施加的作用小得多。但是,在强磁场强度下,这两个壁的效果几乎相同。

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