MW级磁控管的互耦锁相模式识别实验研究

Experimental study on identification of intercoupled phase-locked modes in MW-level magnetron

  • 摘要: 互耦锁相技术为磁控管的相干功率合成提供了一种可行的技术方案,然而互耦锁相磁控管中除了工作模式还存在其他干扰模式。本文围绕互耦磁控管中互耦锁相模式的实验识别,根据不同模式在阳极腔中的角向场分布差异,提出了一种适用于MW级磁控管的锁相模式识别实验方案,并通过多次实验测量和数据分析验证了该方案的可行性。通过微扰法多次测量在每个小扇形腔口施加扰动前后不同模式产生的频率偏移值,得到不同模式的角向频偏曲线;同时通过计算多次测量结果的标准差,对数据的离散度进行了评估。结果表明,每种模式在每个测量点的标准差小于0.002 5 GHz,数据离散度较小,多次测量结果基本一致;测得的三种模式的频偏规律与本征模模拟得到三种模式的角向场幅值曲线分别对应吻合,实现了对互耦磁控管中模式的实验识别,为基于互耦锁相技术的磁控管阵列设计提供了基础。

     

    Abstract:
    Background Intercoupled phase-locked technology provides a feasible technical solution for coherent power synthesis in magnetrons. However, intercoupled phase-locked magnetrons often suffer from the coexistence of the desired operating mode and various interference modes, which impact the stability and efficiency of the system.
    Purpose This paper aims to realize the experimental identification of intercoupled phase-locked modes in MW-level magnetrons, so as to provide an experimental basis for mode suppression and array design.
    Methods Leveraging the distinct azimuthal field distributions of different modes in the anode cavity, a mode identification scheme based on the perturbation method is proposed. By applying perturbations at the openings of each small-sector cavity, the frequency shift values before and after perturbations are measured to obtain the azimuthal frequency shift curves for different modes. Additionally, the standard deviation of the measurement results was calculated to evaluate the data dispersion.
    Results The results show that the standard deviation for each mode at each measurement point remains below 0.0025 GHz, indicating high consistency and reliability. The frequency shift laws of the three modes measured align well with the azimuthal field amplitude curves obtained from the eigenmode simulations.
    Conclusions The experimental identification of intercoupled phase-locked modes in MW-level magnetrons is successfully realized. The proposed method is universal and can be extended to other intercoupled magnetron systems. The cold-test results provide guidance for hot-test operation, mode competition suppression, and coupling structure optimization, which lays a foundation for the design and performance improvement of magnetron arrays based on intercoupled phase-locked technology.

     

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