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Progress in Kinetic Plasma Modeling for High-Power Microwave Devices: Analysis of Multipactor Mitigation in Coaxial Cables

机译:大功率微波设备动力学等离子体建模的进展:同轴电缆中的多钳口缓解分析

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We review progress in kinetic plasma modeling by electromagnetic particle-in-cell (EM-PIC) algorithms on unstructured grids. These algorithms are implemented in modular CONPIC and BORPIC C++ codes that integrate a matrix-free explicit finite-element (FE) Maxwell solver based on a parallel sparse-approximate inverse (SPAI) algorithm and a first-principles charge-conserving scatter algorithm to transfer the charged particle information into dynamic variables on the grid. The Maxwell solver of the EM-PIC algorithm utilizes a mixed FE basis and discretizes the time-dependent coupled first-order Maxwell's system explicitly. The explicit solver approximates the inverse FE system matrix ("mass" matrix) using hierarchical sparsity patterns based on the sparsity pattern of the original matrix. The resulting algorithm effectively accounts for multiscale plasma phenomena. We discuss the application of the developed EM-PIC algorithm to the analysis of laboratory plasmas, vacuum electronic devices for generation of high-power microwave signals, and RF electronics multipactor effects and apply the algorithm to the analysis of multipactor effects and its mitigation in coaxial cables.
机译:我们回顾了在非结构化网格上通过电磁粒子在细胞内的动态等离子体建模的进展。这些算法以模块化的CONPIC和BORPIC C ++代码实现,这些代码基于并行稀疏近似逆(SPAI)算法和第一性原理的电荷守恒分散算法,集成了无矩阵显式有限元(FE)Maxwell求解器,以进行转移将带电粒子信息转换为网格上的动态变量。 EM-PIC算法的麦克斯韦求解器利用混合有限元基础,并明确离散了时间相关的耦合一阶麦克斯韦系统。显式求解器基于原始矩阵的稀疏度模式,使用分层稀疏度模式来近似逆FE系统矩阵(“质量”矩阵)。所得算法有效地解决了多尺度等离子体现象。我们讨论了开发的EM-PIC算法在分析实验室血浆,产生高功率微波信号的真空电子设备以及RF电子多因子效应中的应用,并将该算法用于分析多因子效应及其在同轴电缆中的缓解电缆。

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