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Development of a 2.5-Dimensional Particle-In-Cell Code for Efficient High-Power Klystron Design

机译:2.5维单元内粒子编码的开发,可实现高效大功率速调管设计

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In order to efficiently study the complex nonlinear beam–wave interaction in high-power klystrons, we have developed a 2.5-D code, named, KLY2D, based on a theoretical model combining particle-in-cell (PIC) method and finite-difference time-domain (FDTD) algorithm together. In the model, the particle charge and the beam current are properly assigned onto the grids based on the PIC method; the FDTD algorithm is introduced to solve Maxwell's equations so that the space charge of the electron beam can be accurately calculated, and the port-approximation method is employed to simulate high-frequency cavity fields; finally, the Lorentz motion equation is solved to further advance particle motion. This 2.5-D model is more accurate than the simple 1-D nonlinear code. For the cylindrical structure of a normal klystron, the port-approximation cavity model is accurate enough to model field-to-beam effect and saves much more computer resource than the full 3-D PIC model. This code is benchmarked on an S-band 50-MW high-peak-power klystron. The good consistency between the theoretical results and the experimental data indicates the reliability of the theoretical model and the simulation code, which is of importance for further promoting the design and the development of high-power klystrons.
机译:为了有效地研究高功率速调管中复杂的非线性束波相互作用,我们基于结合了单元中粒子(PIC)方法和有限差分的理论模型,开发了一个名为KLY2D的2.5维代码时域(FDTD)算法结合在一起。在该模型中,基于PIC方法将粒子电荷和束流适当分配到网格上;引入FDTD算法求解麦克斯韦方程组,从而可以准确计算出电子束的空间电荷,并采用端口逼近法模拟了高频腔场。最后,求解洛伦兹运动方程以进一步推进粒子运动。这个2.5维模型比简单的1维非线性代码更准确。对于普通速调管的圆柱形结构,端口近似腔模型足够精确,可以对场对束效应进行建模,并且比完整的3D PIC模型节省了更多的计算机资源。此代码以S波段50 MW高峰值功率速调管为基准。理论结果与实验数据的良好一致性说明了理论模型和仿真代码的可靠性,这对于进一步促进大功率速调管的设计和开发具有重要意义。

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