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Multifaceted Simulations Reproducing Experimental Results From the 1.5-MW 140-GHz Preprototype Gyrotron for W7-X

机译:多方面模拟再现1.5mM 140-GHz预谓型陀螺仪为W7-x的实验结果

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A multifaceted simulation procedure, addressing the electron beam properties, the beam-wave interaction, and the internal losses, has been used for the simulation of the experimental operation of a 1.5-MW 140-GHz short-pulse preprototype gyrotron. The preprototype is related to the development of 1.5-MW gyrotrons for the upgrade of the electron cyclotron resonance heating system at the stellarator W7-X. A very good reproduction of experimental results has been achieved by simulation, without resorting to arbitrary speculations. This validated the numerical tools as well as the design and fabrication of the short-pulse preprototype, which fully reached the target of efficient 1.5-MW operation in millisecond pulses. Special attention has been given to simulating the possibility of parasitic after-cavity interaction in the gyrotron launcher. Also, parasitic backward-wave excitation in the gyrotron cavity has been demonstrated by simulation, at a frequency and voltage range in agreement with experimentally observed parasitic oscillations. This offers an additional possibility with respect to the origin of deleterious parasitic oscillations in high-power gyrotrons, which are usually attributed mainly to the gyrotron beam tunnel.
机译:多方面的模拟程序,寻址电子束性能,光束波相互作用和内部损耗已经用于模拟1.5mM 140GHz短脉冲预谓型陀螺型陀拓的实验操作。预谓型与1.5mW陀螺仪的开发有关,用于在螺筋管W7-X处升级电子回旋谐振加热系统。通过模拟实现了实验结果的非常好的繁殖,而不诉诸任意猜测。这验证了数值工具以及短脉冲预介质的设计和制造,它充分达到了毫秒脉冲中有效的1.5mW操作的目标。已经特别注意模拟寄射后腔在陀螺发射器中的腔室互动的可能性。此外,通过模拟在与实验观察到的寄生振荡的一致性的频率和电压范围内进行了频率和电压范围的寄生向后波激发。这提供了关于高功率陀螺仪中有害寄生振荡的起源的额外可能性,这通常主要归因于陀螺束隧道。

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