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Phase stability of a standing-wave free-electron laser

机译:驻波自由电子激光器的相位稳定性

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Abstract: The standing-wave free-electron laser (FEL) differs from a conventional linear-wiggler microwave FEL in using irises along the wiggler to form a series of standing-wave cavities and in reaccelerating the beam between cavities to maintain the average energy. The device has been proposed for use in a two-beam accelerator because microwave power can be extracted more effectively than from a traveling-wave FEL. A simplified numerical simulation indicates that, with appropriate prebunching, the standing-wave FEL can produce an output signal that is effectively the same in all cavities. However, changes in the beam energy of less than 1% are found to introduce unacceptably large fluctuations of signal phase along the device. Analytic calculations and single-particle simulations are used here to show that the phase fluctuations result from beam synchrotron motion in the initial signal field, and an approximate analytic expression for the signal phase is derived. Numerical simulations are used to illustrate the dependence of phase fluctuations on the beam prebunching, the beam-current axial profile, and the initial signal amplitude.!
机译:摘要:驻波自由电子激光器(FEL)与传统的线性摆动振荡器微波FEL的不同之处在于,沿着摆动器使用虹膜形成一系列驻波腔,并重新加速腔之间的光束以保持平均能量。已经提出将该装置用于两束加速器,因为与从行波FEL相比,可以更有效地提取微波功率。简化的数值模拟表明,通过适当的预聚束,驻波FEL可以产生在所有腔中实际上都相同的输出信号。但是,发现光束能量的变化小于1%会导致沿设备的信号相位出现不可接受的大波动。这里使用解析计算和单粒子模拟来表明相位波动是由光束同步加速器在初始信号场中的运动引起的,并得出了信号相位的近似解析表达式。数值模拟用于说明相位波动对光束预聚束,光束电流轴向轮廓和初始信号幅度的依赖性。

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