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Asymmetrical Thermal Boundary Condition Influence on the Flow Structure and Heat Transfer Performance of Paramagnetic Fluid-Forced Convection in the Strong Magnetic Field

机译:不对称的热边界条件对强磁场中顺磁性液压对流的流动结构和传热性能的影响

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Continuous interest in space journeys opens the research fields, which might be useful in non-terrestrial conditions. Due to the lack of the gravitational force, there will be a need to force the flow for mixing or heat transfer. Strong magnetic field offers the conditions, which can help to obtain the flow. In light of this origin, presented paper discusses the dually modified Graetz-Brinkman problem. The modifications were related to the presence of the magnetic field influencing the flow and asymmetrical thermal boundary condition. Dimensionless numerical analysis was performed, and two dimensionless numbers (magnetic Grashof number and magnetic Richardson number) were defined for paramagnetic fluid flow. The results revealed the heat transfer enhancement due to the strong magnetic field influence accompanied by possible but not essential flow structure modifications. On the other hand, the flow structure changes can be utilized to prevent the solid particles’ sedimentation. The explanation of the heat transfer enhancement including energy budget and vorticity distribution was presented.
机译:对太空旅行的持续兴趣开启了研究领域,这可能在非陆地条件下有用。由于引力缺乏,需要迫使流动进行混合或传热。强磁场提供条件,可以有助于获得流量。鉴于此原产地,提出的论文讨论了双重修改的Graetz-Brinkman问题。修改与影响流动和不对称热边界条件的磁场的存在有关。执行无量值数值分析,为顺磁性流体流动定义了两种无量纲数(磁性Grashof数量和磁性Richardson编号)。结果表明,由于可能但不是必要的流动结构修改,因此揭示了由于强磁场影响而导致的传热增强。另一方面,流动结构的变化可用于防止固体颗粒的沉降。提出了包括能量预算和涡旋分布的传热增强的解释。

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