首页> 外文期刊>IEEE Transactions on Electron Devices >Nonlinear Analyses of the Parasitic Backward-Wave Oscillation Power in the Magnetically Focused Pulsed Helix Traveling-Wave Tube Amplifier in the Absence of the Amplified Signal
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Nonlinear Analyses of the Parasitic Backward-Wave Oscillation Power in the Magnetically Focused Pulsed Helix Traveling-Wave Tube Amplifier in the Absence of the Amplified Signal

机译:在没有放大信号的情况下,磁聚焦脉冲螺旋行波管放大器中的寄生后向波振荡功率的非线性分析

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This paper analyzes parasitic backward-wave oscillation power as a function of interaction length and focusing magnetic field parameters in a generic helix traveling-wave tube (TWT) amplifier in the absence of amplified signal. The permanent periodic magnetic (PPM) focusing of the electron beam, the relatively narrowband (less than one octave) TWT, the electron gun with no control grid, the pulsed full beam current cutoff operating mode of the TWT, and the accelerating voltage pulse wider than the amplified RF pulse are considered. Under such conditions, the parasitic backward-wave oscillation can build up at the leading and trailing edge and at the top of the accelerating pulse before and after the input RF signal is applied when the instantaneous accelerating voltage provides for the synchronism condition. The parasitic backward-wave oscillation, although nondesirable in general, can be tolerated if its power does not exceed some allowable level. In this paper, the nonlinear (large-signal) theory of beam-wave interaction in the TWT in the specified case is developed. The theory accounts for the interaction of the multiple harmonics of the backward wave of the slow-wave circuit with the electron beam that alternatively changes the direction of its rotation on each half period of the focusing magnetic field. A system of equations, which makes accessible the start oscillation length and the starting Pierce relative velocity parameter as a function of the electrical parameters of the TWT, the PPM focusing field period, and the magnetic flux density distribution in the large-signal regime, is obtained. A particular numerical example reveals the relation between interaction length, PPM focusing field period, and parasitic backward-wave oscillation power. The approach permits one to design a TWT having the maximum possible interaction length under the allowable parasitic backward-wave oscillation power. Also, the results demonstrate that the focusing magnetic field param-eters have a significant effect on the interaction of the rotating electron beam with the backward wave in the nonlinear regime, as they have in the linear regime
机译:本文分析了在没有放大信号的情况下,普通螺旋行波管(TWT)放大器中寄生反向波振荡功率与相互作用长度和聚焦磁场参数的关系。电子束的永久性周期性磁(PPM)聚焦,相对窄带(小于一个八度音阶)的TWT,无控制栅极的电子枪,TWT的脉冲全束电流截止工作模式以及较宽的加速电压脉冲比放大后的RF脉冲要大的多。在这种情况下,当瞬时加速电压提供同步条件时,在施加输入RF信号之前和之后,寄生的反向波振荡会在上升沿和下降沿以及加速脉冲的顶部建立。寄生反向波振荡虽然通常是不希望的,但如果其功率不超过某些允许的水平,则可以容忍。本文提出了在特定情况下TWT中束波相互作用的非线性(大信号)理论。该理论考虑了慢波电路的后向波的多次谐波与电子束的相互作用,电子束交替地在聚焦磁场的每个半周期上改变其旋转方向。一个方程组,可以使起始振荡长度和起始皮尔斯相对速度参数随TWT的电参数,PPM聚焦场周期和大信号状态下的磁通密度分布而变,获得。一个特殊的数值示例揭示了相互作用长度,PPM聚焦场周期和寄生反向波振荡功率之间的关系。该方法允许设计一种在允许的寄生反向波振荡功率下具有最大可能相互作用长度的TWT。此外,结果表明,在线性状态下,聚焦磁场参数对旋转电子束与反向波在非线性状态下的相互作用具有显着影响。

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