Rostuntsova A A, Ryskin N M, Zotova I V, Ginzburg N S
Institute of Applied Physics, Russian Academy of Sciences, 46 Ulyanova st., Nizhniy Novgorod 603950, Russia.
Saratov Branch, Kotel'nikov Institute of Radio Engineering and Electronics, Russian Academy of Sciences, 38 Zelenaya st., Saratov 410019, Russia.
Phys Rev E. 2022 Jul;106(1-1):014214. doi: 10.1103/PhysRevE.106.014214.
In this paper, transmission of a monochromatic wave through a counterpropagating electron beam under the condition of cyclotron resonance absorption is studied by theoretical analysis and numerical simulation. Conditions of the modulation instability (MI) are analyzed. The MI strongly affects the regimes of transmission. We also derive explicit periodic stationary solutions expressed in terms of elliptic Jacobi functions, as well as bright- and dark-soliton solutions. Analysis of these solutions allows obtaining threshold values of the driving power and frequency for the different regimes of transmission, such as cyclotron absorption, multifrequency self-modulation oscillations, and stationary single-frequency propagation. The theoretical predictions are verified by numerical simulation. In this way, we obtain the conditions at which a continuous-wave driving signal disintegrates into a close-to-periodic train of microwave soliton pulses.
本文通过理论分析和数值模拟研究了在回旋共振吸收条件下单色波通过反向传播电子束的传输。分析了调制不稳定性(MI)的条件。MI对传输机制有强烈影响。我们还推导了用椭圆雅可比函数表示的显式周期稳态解以及亮孤子和暗孤子解。对这些解的分析使得能够获得不同传输机制(如回旋吸收、多频自调制振荡和稳态单频传播)的驱动功率和频率的阈值。理论预测通过数值模拟得到验证。通过这种方式,我们获得了连续波驱动信号分解为接近周期的微波孤子脉冲序列的条件。