论文标题

两束非线性等离子体韦克菲尔德加速器中的最佳梁加载器

The Optimal Beam-loading in Two-bunch Nonlinear Plasma Wakefield Accelerators

论文作者

Wang, Xiaoning, Gao, Jie, Su, Qianqian, Wang, Jia, Li, Dazhang, Zeng, Ming, Lu, Wei, Mori, Warren B., Joshi, Chan, An, Weiming

论文摘要

由于光束加载的高度非线性性质,目前无法分析确定两孔等离子体Wakefield加速器中所需的光束参数,以保持低能量扩散。因此,在本文中,通过使用Broyden-fletcher-goldfarb-Shanno算法进行参数扫描,使用代码QuickPIC和多项式回归以及K-折交叉验证方法,我们获得了两个拟合配方,以计算基于Tri-gausselet Electron wabros的参数,以在tri-gaussian beam上施加量的参数,以在tri-gaussian beam上施加量的范围,以在tri-gaussian beam上施加量的范围,以在tri-gaussian tramim spredman上施加了a的范围,以范围内施加了imim spredman的范围。加速器。一个公式允许优化尾梁的每单位长度的归一化电荷,以达到最小的能量扩散,即最佳梁载。当尾束实现最佳梁加载时,另一个直接给出了变压器比。从拟合公式获得了一个简单的尺度定律,用于驱动梁和尾梁的电荷,这表明当两个梁的长度和两个梁的分离和等离子体密度固定时,始终可以实现两个梁的给定电荷比。该公式还可以帮助获得最大加速电荷的最佳血浆密度和分别在最佳梁加载下的最大加速效率。这两个拟合公式将显着提高设计和优化两束等离子体Wakefield加速阶段的效率。

Due to the highly nonlinear nature of the beam-loading, it is at present not possible to analytically determine the beam parameters needed in a two-bunch plasma wakefield accelerator for maintaining a low energy spread. Therefore in this paper, by using the Broyden-Fletcher-Goldfarb-Shanno algorithm for the parameter scanning with the code QuickPIC and the polynomial regression together with k-fold cross-validation method, we obtain two fitting formulas for calculating the parameters of tri-Gaussian electron beams when minimizing the energy spread based on the beam-loading effect in a nonlinear plasma wakefield accelerator. One formula allows the optimization of the normalized charge per unit length of a trailing beam to achieve the minimal energy spread, i.e. the optimal beam-loading. The other one directly gives the transformer ratio when the trailing beam achieves the optimal beam-loading. A simple scaling law for charges of drive beams and trailing beams is obtained from the fitting formula, which indicates that the optimal beam-loading is always achieved for a given charge ratio of the two beams when the length and separation of two beams and the plasma density are fixed. The formulas can also help obtain the optimal plasma densities for the maximum accelerated charge and the maximum acceleration efficiency under the optimal beam-loading respectively. These two fitting formulas will significantly enhance the efficiency for designing and optimizing a two-bunch plasma wakefield acceleration stage.

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