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FEA-Aided Design of a Powered Scattering Magnet at the NHMFL

机译:NHMFL的动力散射磁铁的FEA辅助设计

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The NHMFL has completed the design of all major components of a high-field split resistive magnet for use in far-infrared photon scattering experiments. The magnet includes four large scattering ports of elliptical shape at the mid-plane. Such a magnet configuration results in unique design challenges being especially severe for the windings in the mid-plane region of the innermost coils. Consequently, the NHMFL incorporated its newly developed technology called split Florida-Helix previously tested at the NHMFL with diverse working models. The user magnet, to be operated at our own facility, will consist of 5 resistive coils consuming a total of less than 28 MW of dc power and providing a flux-density of at least 25 T available at the center of the user space. All coils employ axial current grading for field optimization and stress management. Advanced finite element analysis (FEA) served as the essential tool guiding the design optimization of the overall system and the various components. This paper provides a systematic discussion of the critical features and techniques utilized in the complex model-based analysis and the authors present a variety of detailed FEA results and design parameters critical for the integration of the split Florida-helix in conjunction with the traditional Florida Bitter disc design.
机译:NHMFL已完成用于远红外光子散射实验的高场分割电阻磁体的所有主要组件的设计。磁体在中平面包括四个椭圆形的大散射端口。这种磁体构造导致独特的设计挑战对于最里面的线圈的中平面区域中的绕组而言尤其严峻。因此,NHMFL结合了其最新开发的技术,即以前在NHMFL进行过测试的,采用多种工作模型的分裂佛罗里达-螺旋弹簧技术。用户磁体将在我们自己的设备上运行,将由5个电阻线圈组成,这些线圈消耗的总直流功率不到28 MW,并且在用户空间的中心处提供的磁通密度至少为25T。所有线圈均采用轴向电流分级进行磁场优化和应力管理。先进的有限元分析(FEA)是指导整个系统和各个组件的设计优化的基本工具。本文对基于复杂模型的分析中使用的关键特征和技术进行了系统的讨论,作者介绍了各种详细的有限元分析结果和设计参数,这些结果和拆分的佛罗里达螺旋与传统的佛罗里达苦味剂的整合至关重要光盘设计。

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