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Particle-in-Cell Simulation and Optimization for a 220-GHz Folded-Waveguide Traveling-Wave Tube

机译:220 GHz折叠波导行波管的单元内粒子模拟和优化

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The folded-waveguide slow-wave structure (SWS) is a robust beam–wave interaction circuit for millimeter-wave traveling-wave tubes. We applied a particle-in-cell solver (Computer Simulation Technology Particle Studio) to analyze and optimize a 220-GHz folded-waveguide SWS. The beam–wave interaction and the electron beam dynamics were studied based on simulation results. The influence of the beam tunnel, with respect to its transverse shape and size, on the circuit performance was investigated in detail. A beam tunnel with a square cross section exhibits lower gain and efficiency and similar bandwidth compared with a beam tunnel with a circular cross section. With a proper phase-velocity taper employed in the nonlinear region of the circuit, the small-signal gain, peak saturated output power, and efficiency were significantly improved, increasing from 21.5 to 27.8 dB, 41 to 70.5 W, and 4.5% to 8%, respectively, for a 36-mm-long loss-free circuit. A simulated 3-dB bandwidth of $sim$15 GHz is demonstrated.
机译:折叠波导慢波结构(SWS)是用于毫米波行波管的稳健的束波相互作用电路。我们应用了单元中粒子求解器(Computer Simulation Technology Particle Studio)来分析和优化220 GHz折叠波导SWS。基于仿真结果,研究了束波相互作用和电子束动力学。详细研究了束隧道相对于其横向形状和尺寸对电路性能的影响。与具有圆形横截面的束隧道相比,具有正方形横截面的束隧道表现出较低的增益和效率以及相似的带宽。通过在电路的非线性区域中采用适当的相速度锥度,小信号增益,峰值饱和输出功率和效率得到了显着改善,分别从21.5 dB增至27.8 dB,41 W增至70.5 W,4.5%增至8对于36毫米长的无损电路,分别为%。演示了15 GHz的模拟3 dB带宽。 $ sim $ 15 GHz。

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