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New frontiers in magnetic refrigeration with high oscillation energy-efficient electromagnets

机译:高振动节能电磁体在磁制冷领域的新领域

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摘要

This article reports on the novel resistive electromagnetic field source with the magnetic energy recovery, which enables the use of the static magnetocaloric regenerator. Most of the existing prototype magnetocaloric devices that operate near room temperature, use magnetic field sources consisting of permanent magnets. The alternating of the magnetic field that is required for the thermodynamic cycle often comes from the rotation of magnets over the refrigerant, that is, an active magnetocaloric regenerator (AMR). Such systems require moving parts and a motor drive, both of which cause additional costs and reduced energy efficiency. Further restrictions in existing devices result from the speed of the magnetisation/demagnetisation process, which is, in addition to efficient heat transfer, crucial for the compactness of the device. Another drawback is that the instant change of the magnetic field is not feasible, regardless of the principle of movement. Permanent-magnet assemblies based on neodymium are also constrained by the use of this rare-earth-material. Therefore, a number of global research activities relate to the optimization of permanent-magnet-based magnetic field sources. However, ohmic loss, the active cooling of magnets, and considerable energy consumption are the reasons why another type of magnetic field source, that is, the electromagnet, was generally avoided by the magnetocaloric community. This article presents a novel and unique approach that enables substantially improved energy efficiency and applicable operation of rare-earth-free and static electromagnetic field sources, by implementing for the first time the magnetic energy recovery for magnetic refrigeration and heat pumping. To prove the advantages of such a system, a large number of numerical simulations, as well as an experimental proof, were conducted. A comparative analysis was made for the evaluation of the energy efficiency of the proposed novel system vs an example of the existing rotating-magnet assembly. The results of this study reveal that this new type of electromagnetic field sources provides a number of different and important advantages that can lead to new frontiers in research. However, the energy efficiency is still lower than that of the comparable rotating-magnet assembly.
机译:本文报道了一种具有磁能回收的新型电阻式电磁场源,该源可以使用静态磁热蓄热器。现有的大多数在室温附近运行的原型磁热装置都使用由永磁体组成的磁场源。热力学循环所需的磁场交变通常来自磁体在制冷剂(即,主动磁热再生器(AMR))上的旋转。这样的系统需要运动部件和电动机驱动器,这两者都导致额外的成本和降低的能量效率。充磁/退磁过程的速度对现有设备造成了进一步的限制,这除了有效的传热外,对于设备的紧凑性也至关重要。另一个缺点是,不管运动原理如何,磁场的瞬时变化都是不可行的。基于钕的永磁体组件也受到这种稀土材料的使用的限制。因此,许多全球研究活动都与基于永磁体的磁场源的优化有关。然而,欧姆热损失,磁体的主动冷却以及大量的能耗是磁热社区通常避免使用另一种类型的磁场源(即电磁体)的原因。本文提出了一种新颖独特的方法,该方法通过首次实现磁制冷和热泵的磁能回收,可以显着提高能源效率并实现无稀土和静态电磁场源的适用运行。为了证明这种系统的优势,进行了大量的数值模拟以及实验证明。进行了比较分析,以评估所提出的新型系统的能效,而不是现有旋转磁体组件的实例。这项研究的结果表明,这种新型的电磁场源具有许多不同而重要的优点,可导致研究的新领域。但是,其能量效率仍然低于同类的旋转磁体组件。

著录项

  • 来源
    《Applied Energy》 |2019年第15期|1062-1077|共16页
  • 作者单位

    Univ Ljubljana, Fac Mech Engn, Askerceva 6, Ljubljana 1000, Slovenia;

    Univ Ljubljana, Fac Mech Engn, Askerceva 6, Ljubljana 1000, Slovenia;

    Univ Ljubljana, Fac Math & Phys, Jadranska 19, Ljubljana 1000, Slovenia;

    Univ Ljubljana, Fac Mech Engn, Askerceva 6, Ljubljana 1000, Slovenia;

    Univ Ljubljana, Fac Mech Engn, Askerceva 6, Ljubljana 1000, Slovenia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Magnet; Refrigeration; Heat pump; Magnetocaloric; Thermal switch;

    机译:磁铁;制冷;热泵;磁热;热敏开关;

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