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作为复合制冷剂的三元HoErNi(x = 0.25、0.5、0.75)Laves相的磁热性能。

Magnetocaloric performance of the three-component HoErNi (x = 0.25, 0.5, 0.75) Laves phases as composite refrigerants.

作者信息

Ćwik Jacek, Koshkid'ko Yurii, Nenkov Konstantin, Tereshina-Chitrova Evgenia, Małecka Małgorzata, Weise Bruno, Kowalska Karolina

机构信息

Institute of Low Temperature and Structure Research, PAS, Okólna 2, 50-422, Wrocław, Poland.

Leibniz IFW Dresden, Institute for Complex Materials, 01069, Dresden, Germany.

出版信息

Sci Rep. 2022 Jul 19;12(1):12332. doi: 10.1038/s41598-022-16738-7.

Abstract

To date, significant efforts have been put into searching for materials with advanced magnetocaloric properties which show promise as refrigerants and permit realization of efficient cooling. The present study, by an example of HoErNi, develops the concept of magnetocaloric efficiency in the rare-earth Laves-phase compounds. Based on the magneto-thermodynamic properties, their potentiality as components of magnetocaloric composites is illustrated. The determined regularities in the behaviour of the heat capacity, magnetic entropy change, and adiabatic temperature change of the system substantiate reaching high magnetocaloric potentials in a desired temperature range. For the HoErNi solid solutions, we simulate optimal molar ratios and construct the composites used in magnetic refrigerators performing an Ericsson cycle at low temperatures. The tailored magnetocaloric characteristics are designed and efficient procedures for their manufacturing are developed. Our calculations based on the real empirical data are very promising and open avenue to further experimental studies. Systems showing large magnetocaloric effect (MCE) at low temperatures are of importance due to their potential utilization in refrigeration for gas liquefaction.

摘要

迄今为止,人们已付出巨大努力来寻找具有先进磁热性能的材料,这些材料有望用作制冷剂并实现高效冷却。本研究以HoErNi为例,提出了稀土拉夫斯相化合物中磁热效率的概念。基于磁热动力学性质,阐述了它们作为磁热复合材料组分的潜力。系统的热容、磁熵变和绝热温度变化行为中确定的规律,证实了在所需温度范围内可达到高磁热潜力。对于HoErNi固溶体,我们模拟了最佳摩尔比,并构建了用于在低温下执行埃里克森循环的磁制冷机中的复合材料。设计了定制的磁热特性,并开发了其制造的有效程序。我们基于实际经验数据的计算非常有前景,并为进一步的实验研究开辟了道路。在低温下表现出大磁热效应(MCE)的系统因其在气体液化制冷中的潜在应用而具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f0d/9296530/78d7d79d9daa/41598_2022_16738_Fig1_HTML.jpg

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