首页> 外文期刊>Journal of Heat Transfer >Numerical Analysis of Magnetic Field and Heat Transfer of a Reciprocating Magnetocaloric Regenerator Using a Halbach Magnet Array
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Numerical Analysis of Magnetic Field and Heat Transfer of a Reciprocating Magnetocaloric Regenerator Using a Halbach Magnet Array

机译:利用Halbach磁铁阵列磁场磁场和传热传热的数值分析

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In this study, a numerical model of a reciprocating magnetocaloric regenerator using a Halbach magnet array is developed in ANSYS-FLUENT software. The model consists of three components, namely, (ⅰ) the Halbach magnet array, (ⅱ) the magnetocaloric material (MCM), and (ⅲ) the heat transfer fluid. A two-dimensional (2D) domain is studied due to the axisymmetric geometry of the physical model. A pressure difference is defined between the inlet and outlet sections of the fluid domain to maintain a reciprocating fluid flow. In the proposed computational scheme, a segregated approach is followed to consider the spatial distribution of the magnetic field in the thermal analyses. Therefore, a 2D magnetic field within the MCM is computed using an analytical approach at first, and its results are integrated into ansys-fluent with a user-defined function (UDF). Hydrody-natnic and heat transfer characteristics of the proposed regenerator model are evaluated under various Reynolds numbers and cycle durations. Moreover, the temperature drop at the cold side of the regenerator is represented in terms of the pressure difference, flow duration, and the diameter of Gadolinium (Gd) as the MCM. For the current geometrical configurations, it is observed that the magnetic field varies from OAT to 1T within Gd. The highest temperature spans are measured as 8.4 K, 7.5 K, and 7.2 K numerically for the cycle durations of 1.2 s, 2.2 s, and 4.2 s, respectively.
机译:在该研究中,在ANSYS-FLUENT软件中开发了使用HALBACH磁体阵列的往复磁热再生器的数值模型。该模型由三个部件组成,即(Ⅰ)哈巴赫磁体阵列,(Ⅱ)磁热材料(MCM),和(Ⅲ)传热流体。通过物理模型的轴对称几何学研究了二维(2D)域。在流体域的入口和出口部分之间限定压力差以保持往复流体流动。在所提出的计算方案中,遵循分离的方法,以考虑热分析中磁场的空间分布。因此,首先使用分析方法计算MCM内的2D磁场,并且其结果与用户定义的函数(UDF)集成到ANSYS-FLUENT中。在各种雷诺数和循环持续时间下评估所提出的再生器模型的水晶 - Natric和传热特性。此外,再生器的冷侧的温度降低于作为MCM的压胆碱(GD)的压力差,流动持续时间和直径表示。对于当前的几何配置,观察到磁场在GD内的OAT变化到1T。最高温度跨度分别测量为8.4k,7.5k和7.2 k,分别为1.2 s,2.2 s和4.2 s的循环持续时间。

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