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Active magnetic regenerators: Performance in the vicinity of para-ferromagnetic second order phase transitions.

机译:有源磁蓄热器:在顺铁磁二阶相变附近表现。

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摘要

A technology that has the potential to liquefy hydrogen and natural gas efficiently is an Active Magnetic Regenerative Liquefier (AMRL). An AMRL exploits the magnetocaloric effect displayed by magnetic materials whereby a reversible temperature change is induced when the material is exposed to a magnetic field. This effect can be used to produce cooling. By using the magnetic materials in a regenerator as the heat storage medium and as the means of work input, one creates an Active Magnetic Regenerator (AMR). Because the adiabatic temperature change is a strong function of temperature for most materials, to span a large temperature range such as that needed to liquefy hydrogen, a number of different materials may be needed to make up one or more regenerators. Single material AMRs have been proven, but layering with more than one material has not.; This thesis is a study of AMRs using magnetic refrigerants displaying second-order paramagnetic to ferromagnetic ordering. An analysis of AMR thermodynamics is performed and results are used to define properties of ideal magnetic refrigerants. The design and construction of a novel test apparatus consisting of a conduction-cooled superconducting solenoid and a reciprocating AMR test apparatus are described. A numerical model is developed describing the energy transport in an AMR. Experiments using Gd are performed and results are used to validate the model. A strong relationship between flow phasing is discovered and possible reasons for this phenomenon are discussed. Simulations of AMRs operating in unconventional modes such as at temperatures greater than the transition temperature reveal new insights into AMR behaviour. Simulations of two-material layered AMRs suggest the existence of a jump phenomenon occurring regarding the temperature span. These results are used to explain the experimental results reported by other researchers for a two-material AMR.
机译:主动磁再生液化器(AMRL)是一种有可能有效地液化氢气和天然气的技术。 AMRL利用磁性材料显示的磁热效应,从而在材料暴露于磁场时引起可逆的温度变化。该效果可用于产生冷却。通过将蓄热器中的磁性材料用作储热介质并作为工作手段,人们可以创建一个有源磁蓄热器(AMR)。因为绝热温度变化对大多数材料来说是温度的强函数,所以要跨越较大的温度范围(例如液化氢气所需的温度范围),则可能需要使用许多不同的材料来构成一个或多个再生器。单一材料的AMR已被证明,但是不能使用一种以上的材料进行分层。本文是对使用显示第二顺磁至铁磁有序磁性制冷剂的AMR的研究。进行了AMR热力学分析,并将结果用于定义理想的磁性制冷剂的性能。描述了由传导冷却的超导螺线管和往复式AMR测试设备组成的新型测试设备的设计和构造。建立了描述AMR中能量传输的数值模型。使用Gd进行实验,并使用结果验证模型。发现了流动定相之间的密切关系,并讨论了这种现象的可能原因。在非常规模式下(例如在高于转变温度的温度下)运行的AMR的仿真揭示了对AMR行为的新见解。两种材料的分层AMR的模拟表明存在关于温度跨度的跳跃现象。这些结果用于解释其他研究人员针对两种材料的AMR报告的实验结果。

著录项

  • 作者

    Rowe, Andrew Michael.;

  • 作者单位

    University of Victoria (Canada).;

  • 授予单位 University of Victoria (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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