全局齐次模匹配矩阵下的变频谐振腔求解算法

Calculation for frequency-tunable resonant cavities using a global homogeneous mode-matching matrix

  • 摘要: 针对变频型高功率微波振荡器冷腔参数扫描计算量大、传统端口散射参数峰谷法难以稳定识别弱耦合目标本征模的问题,提出一种基于全局齐次模匹配矩阵的快速本征模求解方法。该方法将三周期同轴谐振腔分解为均匀同轴段和径向台阶不连续面,在各段内展开轴对称电磁模,并保留内部端口前向、后向功率波幅,直接装配全局齐次矩阵。通过归一化最小奇异值搜索、周期中心相位推进和 TM01类场型筛选,实现目标模频率定位与分支跟踪。结果表明,在调谐长度为4.6 mm的典型点,传统端口响应不能给出清晰的目标模频率指示,而该方法可形成明确本征候选点并识别目标模式。在调谐长度0~4.6 mm范围内,目标模频率由约13.8 GHz单调升高至15.2 GHz,在所采用的CHIPIC本征模边界条件和模型设置下,目标模频率差异小于0.65%;典型调谐点的单点计算时间约1 min。该方法可为变频型高功率微波源冷腔结构快速设计提供参考。

     

    Abstract:
    Background Frequency-tunable high-power microwave oscillators require repeated cold-cavity calculations over a range of tuning parameters, while conventional port scattering-parameter peak/valley criteria may fail to identify weakly coupled target eigenmodes.
    Purpose This work proposes a fast target-eigenmode calculation method for a three-period coaxial resonant cavity based on a global homogeneous mode-matching matrix.
    Methods The cavity is decomposed into uniform coaxial sections and radial step discontinuities. Axisymmetric modes are expanded in each uniform section, and all internal forward and backward power-wave amplitudes are retained to assemble a global homogeneous matrix. Candidate eigenfrequencies are determined by a normalized minimum-singular-value criterion, and the target π/2 mode is selected using a period-center phase-advance criterion and a TM01-like field-pattern check.
    Results At a typical tuning length of 4.6 mm, conventional S11 and S21 responses do not provide a clear peak/valley indication of the target mode, whereas the proposed criterion gives distinct eigenmode candidates and enables target-mode identification. As the tuning length varies from 0 to 4.6 mm, the target-mode frequency increases monotonically from approximately 13.8 GHz to 15.2 GHz. Under the adopted CHIPIC eigenmode boundary conditions and model settings, the target-mode frequency difference is less than 0.65%, and the computation time for a typical tuning point is about 1 min.
    Conclusion The method provides an efficient tool for rapid cold-cavity design and target-eigenmode tracking in frequency-tunable high-power microwave sources.

     

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