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A coupler for parasitic mode diagnosis in an X-band triaxial klystron amplifier

机译:X波段三轴速调管放大器中用于寄生模式诊断的耦合器

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The traditional methods of parasitic mode excitation diagnosis in an X-band triaxial klystron amplifier (TKA) meet two difficulties: limited installation space and vacuum sealing. In order to solve these issues, a simple and compact coupler with good sealing performance, which can prevent air flow between the main and the auxiliary waveguides, is proposed and investigated experimentally. The coupler is designed with the aperture diffraction theory and the finite-different time-domain (FDTD) method. The designed coupler consists of a main coaxial waveguide (for microwave transmission) and a rectangular auxiliary waveguide (for parasitic mode diagnosis). The entire coupler structure has been fabricated by macromolecule polymer which is transparent to microwave signal in frequency range of X-band. The metal coating of about 200 microns has been performed through electroplating technique to ensure that the device operates well at high power. A small aperture is made in the metal coating. Hence, microwave can couple through the hole and the wave-transparent medium, whereas air flow is blocked by the wave-transparent medium. The coupling coefficient is analyzed and simulated with CST software. The coupler model is also included in particle-in-cell (PIC) simulation with CHIPIC software and the associated parasitic mode excitation is studied. A frequency component of 11.46 GHz is observed in the FFT of the electric field of the drift tube and its corresponding competition mode appears as TE61 mode according to the electric field distribution. Besides, a frequency component of 10.8 GHz is also observed in the FFT of the electric field. After optimization of TE61 mode suppression, an experiment of the TKA with the designed coupler is carried out and the parasitic mode excitation at 10.8 GHz is observed through the designed coupler.
机译:X波段三轴速调管放大器(TKA)中的寄生模式激励诊断的传统方法遇到两个难题:有限的安装空间和真空密封。为了解决这些问题,提出了一种简单且紧凑且具有良好密封性能的耦合器,该耦合器可以防止主波导和辅助波导之间的空气流动。耦合器是根据孔径衍射理论和时域有限差分(FDTD)方法设计的。设计的耦合器由一个主同轴波导管(用于微波传输)和一个矩形辅助波导管(用于寄生模式诊断)组成。整个耦合器结构由高分子聚合物制成,该高分子聚合物对X波段频率范围内的微波信号透明。已经通过电镀技术执行了约200微米的金属涂层,以确保该设备在高功率下正常运行。在金属涂层上开一个小孔。因此,微波可以通过孔和波透明介质耦合,而空气流动被波透明介质阻挡。耦合系数用CST软件进行分析和仿真。使用CHIPIC软件将耦合器模型包括在单元粒子(PIC)仿真中,并研究了相关的寄生模式激励。在漂移管电场的FFT中观察到11.46 GHz的频率分量,根据电场分布,其对应的竞争模式显示为TE 61 模式。此外,在电场的FFT中还观察到10.8GHz的频率分量。在优化TE 61 模式抑制之后,使用设计的耦合器进行了TKA实验,通过设计的耦合器观察到10.8 GHz的寄生模式激励。

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