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首页> 外文期刊>Terahertz Science and Technology, IEEE Transactions on >Full-Scale Three-Dimensional Electromagnetic Simulations of a Terahertz Folded-Waveguide Traveling-Wave Tube Using ICEPIC
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Full-Scale Three-Dimensional Electromagnetic Simulations of a Terahertz Folded-Waveguide Traveling-Wave Tube Using ICEPIC

机译:使用ICEPIC的太赫兹折叠波导行波管的全尺寸三维电磁仿真

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摘要

This paper discusses simulation and modeling of the slow wave structure of a folded-waveguide terahertz traveling wave tube (TWT) using the Improved Concurrent Electromagnetic Particle In Cell (ICEPIC) software. This is the first time ICEPIC has been used for simulation of a TWT amplifier. Cold test simulations compare favorably with analytical models; at 368 GHz, the on-axis interaction impedance is 7.8 $Omega$ . Hot test (beam included) ICEPIC simulations were used to determine the effects of space charge on the gain calculations. At 368 GHz, the normalized beam plasma frequency from ICEPIC simulations is ${mitOmega}_{p}=0.56$. Analysis of our ICEPIC simulations at 368 GHz indicates a normalized beam plasma frequency 75% larger than an analytical model we improvised from a sheath helix model taken from the literature. The hot test ICEPIC simulations at 368 GHz for a 64 periods long slow wave structure and a 10 mA, 25 kV electron beam produce small signal gain of 27 dB. The small-signal fractional 3-dB bandwidth of the TWT is 2.9%. The saturated fractional 3-dB bandwidth is 3.2%. Large signal simulations indicate that the saturated power at 368 GHz is 39.4 dBm and the saturated gain is 21.8 dB. A snapshot of a cross section of the electron beam shows bunching in space and a corresponding modulation in the velocity of the electron beam.
机译:本文讨论了使用改进的并发电磁粒子内胞(ICEPIC)软件对折叠波导太赫兹行波管(TWT)的慢波结构进行仿真和建模。这是ICEPIC首次用于TWT放大器的仿真。冷测试模拟与分析模型相比具有优势。在368 GHz时,轴上相互作用阻抗为7.8 Omega $。使用热测试(包括光束)ICEPIC仿真来确定空间电荷对增益计算的影响。在368 GHz处,来自ICEPIC模拟的归一化束等离子体频率为$ {mitOmega} _ {p} = 0.56 $。对我们在368 GHz下的ICEPIC仿真进行的分析表明,归一化束等离子体频率比我们从文献中的鞘螺旋模型即兴得出的分析模型大75%。在368 GHz下对64个周期长的慢波结构和10 mA,25 kV电子束进行的热测试ICEPIC仿真产生了27 dB的小信号增益。 TWT的小信号分数3-dB带宽为2.9%。 3-dB的饱和分数带宽为3.2%。大信号模拟表明,368 GHz时的饱和功率为39.4 dBm,饱和增益为21.8 dB。电子束横截面的快照显示了空间中的聚束和电子束速度的相应调制。

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