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Optimization of the Compact Gamma-ray Source Based on Inverse Compton Scattering Design

机译:基于反康顿散射设计的紧凑型伽马射源优化

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Recently a MeV quasi-monochromatic compact gamma-ray source with high peak spectral density based on the inverse Compton scattering (ICS) has been proposed in the Department of Engineering Physics, Tsinghua University. This type compact gamma-ray source will be used for advanced X/gamma-ray imaging application based on the nuclear resonance Fluorescence (NRF) [1]. The machine size and the peak spectral density of scattered photons are the most important parameters for such applications. In order to make the source compact enough, a compact commercial narrow bandwidth Nd: Yag laser system with ~50 fs FWHM duration and ~1.5 J maximum energy per pulse is selected as the scattering laser, and the linac is proposed to combine a photo-injector and an X-band main linac to obtain high quality 250 MeV maximum energy electron beam with high charge (~ 200 pC) and low transverse and longitudinal emittance. In ICS, the properties of the generated photons are determined by the parameters of the incident laser and electron beam, and also their interaction geometry. In this paper, we will present the optimization of the linac design. We systematically simulate and optimize the linac design with Matlab, Astra [2] and Cain [3]. In the simulations and optimizations, we use differential evolution algorithm for simultaneous optimization of multiple parameters. Three possible types of photo-injector, S-band photocathode RF(radio frequency) gun with S-band booster, C-band photocathode RF gun with C-band booster, X-band photocathode RF gun with X-band booster, are systematically optimized and compared. We also analyzed wakefield effect on the electron beam quality.
机译:最近,在清华大学工程物理系中提出了一种基于逆康顿散射(ICS)的高峰谱密度的MeV准单色紧致伽马射线源。这种紧凑的伽马射线源将用于基于核共振荧光(NRF)的高级X /伽马射线成像应用[1]。散射光子的机器尺寸和峰值光谱密度是这种应用的最重要参数。为了使源紧凑,一个紧凑的商业窄带宽Nd:YAG激光系统,具有〜50 fs fwhm持续时间和〜1.5 j每个脉冲的最大能量被选择为散射激光,提出LINAC以组合照片 - 喷射器和X波段主LINAC获得高质量的250MeV最大能量电子束,具有高电荷(〜200pc)和低横向和纵向发射。在IC中,所产生的光子的性质由入射激光器和电子束的参数确定,以及它们的相互作用几何形状。在本文中,我们将介绍Linac设计的优化。我们系统地模拟和优化Linac设计与Matlab,Astra [2]和Cain [3]。在模拟和优化中,我们使用差分演进算法来同时优化多个参数。具有S波段助力器的三种可能类型的照片注射器,S波段光电阴极RF(射频)枪,带有C波段助推器的C波段光电阴极RF枪,系统地优化和比较。我们还分析了对电子束质量的Wakefield影响。

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