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High-harmonic slotted gyroklystron amplifier: linear theory and nonlinear simulation

机译:高谐波缝隙回旋速调管放大器:线性理论和非线性模拟

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摘要

A fluid theory and two self-consistent particle-tracing simulation codes are described for designing low voltage, s/sup th/-harmonic slotted gyroklystron amplifiers, in which axis-encircling electron beams are in resonance with the s/sup th/-order azimuthal modes of a series of magnetron-type cavities, allowing the gyrotron amplifier's required magnetic field to be reduced by a factor of s. The linear fluid theory yields a convenient closed-form expression for gain and the nonlinear simulation code determines the large-signal device performance, while the much faster linear simulation code allows thorough, multi-dimensional parameter searches to be performed quickly. The simulation codes self-consistently account for shifts of the cavity's resonant frequency and quality factor due to beam loading. The three theoretical approaches, which agree in the small-signal regime for weak beam loading, were used to design a 95 GHz, three-cavity, slotted twelve-vane, sixth-harmonic gyroklystron amplifier utilizing a 70 kV, 10 A, v/sub /spl perp///v/sub z/=2, axis-encircling beam and a 6.1 kG magnet. The nonlinear self-consistent simulation code predicts that the sixth-harmonic gyrotron amplifier with an ideal beam will yield an electronic efficiency of 20% and a saturated gain of 37 dB, while the more realistic device with a 10% axial velocity spread will generate a peak output power of 84 kW with 12% efficiency, a saturated gain of 27 dB and a 0.2% constant-drive bandwidth.
机译:描述了一种流体理论和两个自洽的粒子追踪模拟代码,用于设计低电压,s / sup /谐波谐波缝隙速调速调管放大器,其中轴向环绕的电子束与s / sup /阶共振一系列磁控管型腔的方位角模式,可使回旋加速器放大器所需的磁场减小s倍。线性流体理论产生了一个方便的闭合形式的增益表达式,非线性仿真代码确定了大信号设备的性能,而更快的线性仿真代码则允许快速,全面地进行多维参数搜索。仿真代码自洽地说明了由于束负载而导致的谐振腔谐振频率和品质因数的偏移。三种理论方法在小信号条件下均适用于弱波束负载,它们被用于设计一个采用70 kV,10 A,v /的95 GHz,三腔,开槽的十二叶片,六谐波陀螺速调管放大器。 sub / spl perp /// v / sub z / = 2,环绕轴的光束和6.1 kG磁体。非线性自洽仿真代码预测,具有理想光束的第六谐波回旋管放大器将产生20%的电子效率和37 dB的饱和增益,而更现实的设备将具有10%的轴向速度扩展,将产生一个峰值输出功率为84 kW,效率为12%,饱和增益为27 dB,恒定驱动带宽为0.2%。

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