| 注册
首页|期刊导航|物理学报|室温磁制冷技术的研究进展

室温磁制冷技术的研究进展

李振兴 李珂 沈俊 戴巍 高新强 郭小惠 公茂琼

物理学报2017,Vol.66Issue(11):1-17,17.
物理学报2017,Vol.66Issue(11):1-17,17.DOI:10.7498/aps.66.110701

室温磁制冷技术的研究进展

Progress of room temperature magnetic refrigeration technology

李振兴 1李珂 2沈俊 1戴巍 1高新强 2郭小惠 1公茂琼2

作者信息

  • 1. 中国科学院理化技术研究所,低温工程学重点实验室,北京 100190
  • 2. 中国科学院大学,北京 100049
  • 折叠

摘要

Abstract

Magnetic refrigeration is an environmental friendly,intrinsically highly efficient,low noisy and low vibratory refrigeration technology.It has been considered as one of promising alternatives to traditional vapor compression refrigeration technology.Magnetic refrigeration,in which solid magnetic materials instead of gaseous refrigerants are used,is based on the magnetocaloric effect.When magnetocaloric material moves in or out of magnetic field,it releases heat due to magnetization or absorbs heat due to demagnetization,respectively.In this paper,magnetocaloric effects (MCEs) and basic thermodynamic cycles are briefly described at first.Some typical magnetic refrigeration cycles are introduced from the viewpoint of thermodynamics,which include hybrid cycle,cycle based on the active magnetic regenerator and cycle based on the active magnetic regenerator coupled with gas regenerative refrigeration.Specifically,magnetic refrigeration cycle based on the active magnetic regenerator (AMR) coupled with gas regenerative refrigeration is a novel idea that combines the magnetocaloric effect with the regenerative gas expansion refrigeration.And it has been under the way to try to achieve greater refrigeration performance of the coupled refrigerator in the research institutions.Thereafter,the paper reviews the existing different numerical models of AMR refrigerator.Analyzing and optimizing an AMR magnetic refrigerator are typical complicated multi-physics problems,which include heat transfer,fluid dynamics and magnetics.The majority of models published are based on one-dimensional simplification,which requires shorter computation time and lower computation resources.Because a one-dimensional model idealizes many factors important for the system performance,two-or three-dimensional numerical models have been setup.Besides,some key items for the model are described in detail,such as magnetocaloric effect,thermal conduction,thermal losses,demagnetizing effect and magnetic hysteresis.Considering the accuracy,convergence and computation time,it is quite vital for numerical models to choose some influential factors reasonably.Then,the recent typical room magnetic refrigeration systems are listed and grouped into four types,i.e.,reciprocating-magnet type,reciprocating-regenerator type,rotary-magnet type,and rotaryregenerators type.Different characteristics of these four types are compared.Reciprocating magnetic refrigerators have the advantages of simple construction and max magnetic field intensity difference.Rotary magnetic refrigerator due to compact construction,higher operational frequency and better performance is deemed as a more promising type,in the progress of magnetic refrigeration technology.Meanwhile there are still some key challenges in the practical implementation of magnetic refrigeration technology,such as the development and preparation technologies of high-performance MCE materials,powerful magnetic circuit system and flowing condition.Finally,possible applications are discussed and the tendency of future development is given.

关键词

室温磁制冷/磁热效应/热力学循环/数值仿真

Key words

room temperature magnetic refrigeration/magnetocaloric effect/thermodynamic cycle/numerical simulation model

引用本文复制引用

李振兴,李珂,沈俊,戴巍,高新强,郭小惠,公茂琼..室温磁制冷技术的研究进展[J].物理学报,2017,66(11):1-17,17.

基金项目

Project supported by the National Natural Science Foundation of China (Grant Nos.51322605,51676198).国家自然科学基金(批准号:51322605,51676198)资助的课题. (Grant Nos.51322605,51676198)

物理学报

OA北大核心CSCDCSTPCD

1000-3290

访问量0
|
下载量0
段落导航相关论文