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Linear and nonlinear analysis of a gyro-peniotron oscillator and study of start-up scenario in a high order mode gyrotron.

机译:陀螺-回旋加速器振荡器的线性和非线性分析以及高阶模式回旋加速器的启动方案研究。

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The Cyclotron Resonant Maser (CRM) is a device in which electrons gyrating in an external magnetic field produce coherent EM radiation. A DC electron beam current must be converted to an AC beam current to create RF energy. There are two possible approaches: phase bunching (O-type) and spatial segregation (M-type). In phase bunching, electrons are either accelerated or decelerated depending on when the electrons enter the interaction region, causing phase bunching. The electron bunches are then slowed down by the RF field for energy extraction. Not all electrons lose energy; some even gain energy. In spatial segregation, electrons entering the interaction region at different times are deflected in different directions. With an appropriate spatially varying RF field, all electrons can lose energy leading to very high conversion efficiency.; A CRM with a smooth walled cylindrical waveguide interaction cavity and an annular electron beam passing through it can generate very large amount of RF energy. Depending on the electron beam position a gyrotron (O-type device) and a gyro-peniotron (M-type device) are possible.; In this work, first, a nonlinear theory to study CRMs with a smooth walled cylindrical waveguide interaction cavity is presented. The nonlinear set of differential equations are linearized to study the starting conditions of the device. A gyro-peniotron operating in the TE0.2 -mode is studied using the theory presented. It is found that a gyro-peniotron operating in a low order mode can be self excited without mode competition from gyrotron modes, leading to the possibility of a very efficient high power RF source. A higher order mode gyro-peniotron experiences severe mode competition from gyrotron modes. The cavity Q required for gyro-peniotron operation is very high, which can lead to excessive heat in the cavity walls due to ohmic losses. Hence, a gyro-peniotron operation seems practical only in low order modes and in short pulses. Second, an existing linear theory of gyrotrons is extended to include effects of magnetic field tapering, cavity wall profile, finite beam thickness, velocity spread and axially dependent beam coupling to the fields of competing modes. Starting currents are calculated for the operating and the most dangerous competing mode in a 140 GHz gyrotron, which was developed at Communications and Power Industries (CPI). Start-up scenario of this device is also studied using the non-stationary code MAGY, which is a tool for modeling slow and fast microwave sources.
机译:回旋加速器共振器(CRM)是一种器件,其中在外部磁场中旋转的电子会产生相干的EM辐射。直流电子束电流必须转换为交流束电流以产生RF能量。有两种可能的方法:相集(O型)和空间隔离(M型)。在相聚束中,取决于电子何时进入相互作用区域而使电子加速或减速,从而引起相聚束。然后,通过射频场使电子束减速以提取能量。并非所有电子都失去能量;有些甚至获得能量。在空间隔离中,在不同时间进入相互作用区域的电子会沿不同方向偏转。在适当的空间变化RF场的情况下,所有电子都会损失能量,从而导致非常高的转换效率。具有光滑壁圆柱形波导相互作用腔和环形电子束通过的CRM可以产生非常大量的RF能量。根据电子束的位置,可以使用回旋加速器(O型设备)和回旋加速器(M型设备)。在这项工作中,首先,提出了一种非线性理论来研究具有光滑壁圆柱波导相互作用腔的CRM。将非线性微分方程组线性化以研究设备的启动条件。使用提出的理论研究了在TE0.2模式下工作的陀螺-压电加速器。发现以低阶模式工作的陀螺-压电加速器可以自激,而没有与回旋加速器模式的模式竞争,从而导致非常高效的高功率射频源的可能性。高阶模式的回旋加速器经历了与回旋模式激烈的模式竞争。陀螺-回旋加速器操作所需的腔Q非常高,由于欧姆损耗,会导致腔壁中产生过多的热量。因此,回旋加速器操作似乎仅在低阶模式和短脉冲中才是实际的。其次,对现有的回旋管线性理论进行了扩展,以包括磁场逐渐变细,腔壁轮廓,有限的束厚度,速度分布以及与竞争模场耦合的轴向相关束的影响。在通信和电力工业(CPI)开发的140 GHz旋流器中,针对运行模式和最危险的竞争模式计算启动电流。还使用非平稳代码MAGY研究了该设备的启动情况,MAGY是用于对慢速和快速微波源进行建模的工具。

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