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Particle Simulation on High Power Terahertz Wave Generated by Backward wave oscillator

机译:反向波振荡器产生的大功率太赫兹波的粒子模拟

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Microwave vacuum electron devices (MVED) are capable of handling more power in a smaller interaction volume than the solid-state devices. An over-mode high power terahertz backward wave oscillator (BWO) is proposed. The slow wave structure (SWS) is constructed as follow: a series of equidistant annular slots are cut in the inner wall of a cylindrical waveguide. The dispersion relationship of the SWS is theoretically analyzed. The parameters of this structure are optimized by using 2.5D UNIPIC code. The influences of structure parameters and working parameters on the performance of the device are investigated, such as the period number of the SWS, the beam voltage, and the strength of external guiding magnetic field. The numerical results indicate that the frequency of the device is not sensitive to the beam voltage. This is the typical characteristic when the device works at π-mode. Under the condition of the electron beam with the voltage of 200 kV, the current of 1100 A, the inner radius of 2 mm, the outer radius of 2.5 mm, and magnetic field of 5 Tesla, the TM_(01) mode wave begins to oscillate at 3.5 ns, whose average power is about 30 MW, frequency is 0.147 THz. And an efficiency of 14% is also obtained with a fine spectrum characteristic. The numerical results demonstrate that the over-mode electrodynamic structure can be used to decrease internal electric field strength while avoiding multimode generation and maintaining good spectral purity.
机译:微波真空电子设备(MVED)能够以比固态设备小的交互体积处理更多的功率。提出了一种超模大功率太赫兹反向波振荡器(BWO)。慢波结构(SWS)的结构如下:在圆柱波导的内壁上切出一系列等距的环形槽。从理论上分析了SWS的色散关系。通过使用2.5D UNIPIC代码优化此结构的参数。研究了结构参数和工作参数对器件性能的影响,如SWS的周期数,射束电压和外部引导磁场的强度。数值结果表明,该装置的频率对电子束电压不敏感。这是设备在π模式下工作时的典型特性。在电压为200 kV,电流为1100 A,内径为2 mm,外径为2.5 mm,磁场为5 Tesla的电子束条件下,TM_(01)模式波开始以3.5 ns的频率振荡,其平均功率约为30 MW,频率为0.147 THz。而且还具有14%的效率和良好的光谱特性。数值结果表明,超模电动力结构可用于降低内部电场强度,同时避免产生多模并保持良好的光谱纯度。

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