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Design and Optimization of Superconducting Magnet System for 42.0-GHz Gyrotron

机译:42.0 GHz回旋管超导磁体系统的设计与优化

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In the framework of the Department of Science and Technology (DST), Government of India, a 42.2-GHz 200-kW continuous-wave/long-pulse gyrotron is envisaged to be indigenously developed. This gyrotron shall employ superconducting magnets at the interaction region and warm coils for the gun and collector region. The Institute for Plasma Research is responsible for the overall design and fabrication of the magnet system along with the required housing cryostat and auxiliary support system. The design of the appropriate magnet system is currently under progress in accordance with gyrotron physics and engineering considerations. This requires a highly homogeneous spatial field profile as well as a very steep gradient as per the compression and velocity ratios between the emission and resonator regions. These aspects demand a very precise winding of the magnets as well as the collinearity of the magnetic axis with that of the beam axis. Several technological aspects, such as accurately designing and positioning of the magnet system in space, to optimize the required field profile have been taken up in the run up to realize a highly homogeneous and stable magnet system. Different design criteria for the theoretical optimization of magnet parameters and their spatial arrangement such that the required axial magnetic field profile can be achieved have been taken up. In addition, finite-element analysis (FEA) of the optimized magnet parameter is done, and the magnetic field profile is compared with the theory. The detailed design of the guiding magnet system, the optimization of coil parameters, and the FEA simulation for the validation of the optimized parameters are presented in this paper.
机译:在印度政府科学技术部(DST)的框架内,设想将自行开发42.2 GHz 200kW连续波/长脉冲回旋管。该旋流器应在相互作用区域使用超导磁体,并在喷枪和收集器区域使用加热线圈。等离子体研究所负责磁体系统的总体设计和制造,以及所需的外壳低温恒温器和辅助支撑系统。根据回旋加速器的物理和工程考虑,目前正在开发合适的磁体系统。根据发射和谐振器区域之间的压缩比和速度比,这需要高度均匀的空间场轮廓以及非常陡峭的梯度。这些方面要求磁体的非常精确的缠绕以及磁轴与束轴的共线性。为了实现高度均匀和稳定的磁体系统,已经在试运行中采用了多个技术方面的内容,例如在太空中精确设计和定位磁体系统,以优化所需的磁​​场分布。已经针对磁体参数及其空间布置进行了理论优化的不同设计准则,从而可以实现所需的轴向磁场分布。另外,对优化后的磁体参数进行了有限元分析(FEA),并将磁场分布与理论进行了比较。本文介绍了导向磁体系统的详细设计,线圈参数的优化以及用于优化参数验证的FEA仿真。

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