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Multiphysics Simulation, Analysis, and Design of a Permanent Magnet Excited Liquid Metal Magnetohydrodynamic Power Generator

机译:永磁励磁液态金属磁流体动力发电机的多物理场仿真,分析与设计

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摘要

Magnetohydrodynamic (MHD) power generation is a method of mechanical to electrical energy conversion, highly researched in the 1960s. Thermal constraints and lack of powerful simulation tools brought advancements in the field to a halt. This dissertation is an attempt to revive MHD, adapting it for renewable energy harvesting and making it thus attractive for inclusion in the energy mix of the near future.;The presented work includes a detailed description of a permanent magnet excited liquid metal (PMLM) MHD generator and its operation, proposing Gallium as the working fluid. Furthermore, multiphysics simulations are used to demonstrate the validity of the analytical derivations of operating characteristics. Experimental measurements of a PMLM MHD generator prototype are provided and used to verify the multiphysics simulation method. A good match between experiments and simulation is observed as well as efficiencies up to 67%, depending on design. Optimal design considerations are included, to demonstrate the feasibility of this mechanical to electrical energy conversion method. Lastly, a case study is presented in which MHD is used for thermal to electrical energy conversion, harvesting low temperature waste heat. This thermal to electrical energy conversion reaches efficiencies up to 25%, depending on design parameters.
机译:磁流体动力(MHD)发电是一种机械到电能的转换方法,在1960年代得到了高度研究。热限制和缺乏强大的仿真工具使该领域的发展停滞不前。本文旨在复兴MHD,使其适用于可再生能源的收集,并因此使其在不久的将来包含在能源结构中具有吸引力。;提出的工作包括对永磁励磁液态金属(PMLM)MHD的详细描述。发电机及其运行,建议使用镓作为工作流体。此外,多物理场仿真被用来证明操作特性的分析推导的有效性。提供了PMLM MHD发生器原型的实验测量结果,并用于验证多物理场仿真方法。根据设计,可以观察到实验与仿真之间的良好匹配,效率高达67%。包括最佳设计考虑因素,以证明这种机械到电能转换方法的可行性。最后,提出了一个案例研究,其中将MHD用于热能到电能的转换,并收集低温废热。这种热能到电能的转换效率高达25%,具体取决于设计参数。

著录项

  • 作者

    Cosoroaba, Eva-Marie.;

  • 作者单位

    The University of Texas at Dallas.;

  • 授予单位 The University of Texas at Dallas.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 123 p.
  • 总页数 123
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 康复医学;
  • 关键词

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