高场-低能μ子电离冷却通道

H. Sayed, R. Palmer
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引用次数: 13

摘要

产生的μ子光束具有较大的横向和纵向发射。为了达到μ子对撞机所要求的低发射率,在μ子的短暂寿命内,需要电离冷却。采用冷却方案可使μ子束6D的横向发射率降至约300 μm-rad,纵向尺寸降至约1-1.5 mm。为了满足高能μ子对撞机的光度要求,横向发射度必须进一步降低到≈50-25 μm-rad,纵向发射度上限为≈76 mm。早期的研究表明,低能量介子束在高场磁体中的横向冷却具有良好的性能,但没有包括阶段之间的横向或纵向匹配。在这项研究中,我们提出了第一个具有横向和纵向匹配的高场低能电离冷却通道的完整设计。通道设计基于强聚焦螺线管,磁场为25-30 T,低动量介子束从135 MeV/c开始逐渐降低。本文提出的冷却通道设计是第一个达到≈50微米尺度发射度的光束。在此基础上,提出了通道的优化设计参数,包括聚焦电磁场、吸收器参数以及横向和纵向匹配。«少
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High Field – Low Energy Muon Ionization Cooling Channel
Muon beams are generated with large transverse and longitudinal emittances. In order to achieve the low emittances required by a muon collider, within the short lifetime of the muons, ionization cooling is required. Cooling schemes have been developed to reduce the muon beam 6D emittances to ≈ 300 μm–rad in transverse and ≈ 1–1.5 mm in longitudinal dimensions. The transverse emittance has to be further reduced to ≈ 50–25 μm–rad with an upper limit on the longitudinal emittance of ≈ 76 mm in order to meet the high-energy muon collider luminosity requirements. Earlier studies of the transverse cooling of low energy muon beams in high field magnets showed a promising performance, but did not include transverse or longitudinal matching between the stages. In this study we present the first complete design of the high field-low energy ionization cooling channel with transverse and longitudinal matching. The channel design was based on strong focusing solenoids with fields of 25–30 T and low momentum muon beam starting at 135 MeV/c and gradually decreasing. The cooling channel design presented here is the first to reach ≈ 50 micron scale emittance beam. As a result, we present the channel’s optimized design parameters including the focusingmore » solenoid fields, absorber parameters and the transverse and longitudinal matching.« less
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来源期刊
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3-8 weeks
期刊介绍: Physical Review Special Topics - Accelerators and Beams (PRST-AB), is a peer reviewed, purely electronic journal, distributed without charge to readers and funded by contributions from national laboratories. It covers the full range of accelerator science and technology: subsystem and component technologies, beam dynamics; accelerator applications; and design, operation, and improvement of accelerators used in science and industry. This includes accelerators for high-energy and nuclear physics, synchrotron radiation production, spallation neutron sources, medical therapy, and intense beam applications.
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