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Physics design of a CW high-power proton Linac for accelerator-driven system

机译:加速器驱动系统的连续波大功率质子直线加速器的物理设计

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Accelerator-driven systems (ADS) have evoked lot of interest the world over because of their capability to incinerate the MA (minor actinides) and LLFP (long-lived fission products) radiotoxic waste and their ability to utilize thorium as an alternative nuclear fuel. One of the main subsystems of ADS is a high energy (∼1 GeV) and high current (∼30 mA) CW proton Linac. The accelerator for ADS should have high efficiency and reliability and very low beam losses to allow hands-on maintenance. With these criteria, the beam dynamics simulations for a 1 GeV, 30 mA proton Linac has been done. The Linac consists of normal-conducting radio-frequency quadrupole (RFQ), drift tube linac (DTL) and coupled cavity drift tube Linac (CCDTL) structures that accelerate the beam to about 100 MeV followed by superconducting (SC) elliptical cavities, which accelerate the beam from 100 MeV to 1 GeV. The details of the design are presented in this paper.
机译:加速器驱动系统(ADS)可以焚化MA(次act系元素)和LLFP(长寿命裂变产物)放射性有毒废物,并且具有利用th作为替代核燃料的能力,因此引起了全世界的广泛兴趣。 ADS的主要子系统之一是高能量(约1 GeV)和高电流(约30 mA)的CW质子直线加速器。用于ADS的加速器应具有高效率和可靠性,并且光束损失应非常低,以便进行动手维护。根据这些标准,已经完成了1 GeV,30 mA质子直线加速器的射束动力学仿真。直线加速器由常导射频四极杆(RFQ),漂移管直线加速器(DTL)和耦合腔漂移管直线加速器(CCDTL)结构组成,该结构将光束加速到大约100 MeV,然后是超导(SC)椭圆形腔,加速从100 MeV到1 GeV的光束。本文介绍了该设计的详细信息。

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