论文标题
磁冷却的高级材料:基本面和实际方面
Advanced materials for magnetic cooling:fundamentals and practical aspects
论文作者
论文摘要
在过去的二十年中,关于磁化的研究活动已成倍增加,导致发现了包括金属间和氧化物在内的广泛的材料。即使发现这些材料在实验室尺度上显示出极好的磁化特性,但其中只有受限制的家族可以朝着工业水平升级,并在磁性冷却装置中作为制冷剂实施。另一方面,在大多数报道的评论中,通常会根据其绝热温度和熵变化来讨论磁静电材料,这还不足以对其大规模适用性有更多的了解。在这篇综述中,不仅讨论了最近报道的磁催化材料的基本特性,而且还讨论了它们在功能设备中的热力学性能。审查的家庭特别包括GD1-XRX合金,LAFE13-XSIX,MNFEP1-XASX和R1-XAXMNO3基于基于R1-XAXMNO3的化合物。讨论了其他相关的实际方面,例如机械稳定性,合成和腐蚀问题。另外,在控制磁和磁平衡性能中起着至关重要的作用的固有和外在参数也被考虑。为了重现所需的磁化参数,提出了一些实际模型。最后,引入了旋转磁化效应和多层磁化磁化的概念。
Over the last two decades, the research activities on magnetocalorics have been exponentially increased leading to the discovery of a wide category of materials including intermetallics and oxides. Even though the reported materials were found to show excellent magnetocaloric properties on laboratory scale, only a restricted family among them could be upscaled toward industrial levels and implemented as refrigerants in magnetic cooling devices. On the other hand, in the most of reported reviews, the magnetocaloric materials are usually discussed in terms of their adiabatic temperature and entropy changes, which is not enough to get more insight about their large scale applicability. In this review, not only the fundamental properties of recently reported magnetocaloric materials are discussed but also their thermodynamic performance in functional devices. The reviewed families particularly include Gd1-xRx alloys, LaFe13-xSix, MnFeP1-xAsx and R1-xAxMnO3 based compounds. Other relevant practical aspects such as mechanical stability, synthesis and corrosion issues are discussed. In addition, the intrinsic and extrinsic parameters that play a crucial role in the control of magnetic and magnetocaloric properties are regarded. In order to reproduce the needed magnetocaloric parameters, some practical models are proposed. Finally, the concepts of the rotating magnetocaloric effect and multilayered magnetocalorics are introduced.