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Magnetron Injection Gun Design for Broadband Gyrotron Backward-Wave Oscillator

机译:宽带陀螺仪反向波振荡器的磁控注射枪设计

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Magnetron injection gun (MIG) is capable of generating relativistic electron beam with high velocity ratio and low velocity spread for a gyrotron backward-wave oscillator (gyro-BWO). However, the velocity ratio (α) varies drastically against both the magnetic field and the beam voltage, which significantly limits the tuning bandwidth of a gyro-BWO. This study remedies this drawback by adding a variable trim field to adjust the magnetic compression ratio when changing the operating conditions. Theoretical results obtained by employing a two-dimensional electron gun code (EGUN) demonstrate a constant velocity ratio of 1.5 with a low axial velocity spread of 6% from 3.4-4.8 Tesla. These results are compared and verified with a three-dimensional particle-tracing code (computer simulation technology, CST). The underlying physics for constant α will be discussed in depth.
机译:磁控管注入枪(MIG)能够产生具有高速比的相对论电子束,并且对于陀螺旋转波振荡器(Gyro-BWO)的低速扩散。然而,速度比(α)对磁场和光束电压的速度急剧变化,这显着限制了Gyro-BWO的调谐带宽。本研究通过添加可变修剪字段来补救该缺点以在改变操作条件时调整磁压缩比。通过采用二维电子枪代码(egUN)获得的理论结果证明了1.5的恒定速度比,轴向速度低于3.4-4.8特斯拉。使用三维粒子描绘码(计算机仿真技术,CST)进行比较和验证这些结果。将深入讨论常数α的底层物理。

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