首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Plans for longitudinal and transverse neutralized beam compression experiments, and initial results from solenoid transport experiments
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Plans for longitudinal and transverse neutralized beam compression experiments, and initial results from solenoid transport experiments

机译:纵向和横向中和束压缩实验的计划,以及螺线管传输实验的初步结果

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This paper presents plans for neutralized drift compression experiments, precursors to future target heating experiments. The target-physics objective is to study warm dense matter (WDM) using short-duration (~1 ns) ion beams that enter the targets at energies just above that at which dE/dx is maximal. High intensity on target is to be achieved by a combination of longitudinal compression and transverse focusing. This work will build upon recent success in longitudinal compression, where the ion beam was compressed lengthwise by a factor of more than 50 by first applying a linear head-to-tail velocity tilt to the beam, and then allowing the beam to drift through a dense, neutralizing background plasma. Studies on a novel pulse line ion accelerator were also carried out. It is planned to demonstrate simultaneous transverse focusing and longitudinal compression in a series of future experiments, thereby achieving conditions suitable for future WDM target experiments. Future experiments may use solenoids for transverse focusing of un-neutralized ion beams during acceleration. Recent results are reported in the transport of a high-perveance heavy ion beam in a solenoid transport channel. The principal objectives of this solenoid transport experiment are to match and transport a space-charge-dominated ion beam, and to study associated electron-cloud and gas effects that may limit the beam quality in a solenoid transport system. Ideally, the beam will establish a Brillouin-flow condition (rotation at one-half the cyclotron frequency). Other mechanisms that potentially degrade beam quality are being studied, such as focusing-field aberrations, beam halo, and separation of lattice focusing elements.
机译:本文介绍了中和漂移压缩实验的计划,这是未来目标加热实验的前身。目标物理学的目标是使用短时(〜1 ns)离子束研究热致密物质(WDM),该离子束以刚好高于dE / dx最大的能量进入目标。通过纵向压缩和横向聚焦相结合,可以在目标上实现高强度。这项工作将基于最近在纵向压缩方面取得的成功而进行,在该方法中,首先通过对离子束施加从头到尾的线性速度倾斜,然后使离子束漂移通过,从而将离子束纵向压缩50倍以上。密集的中和背景等离子体。还对新型脉冲线离子加速器进行了研究。计划在一系列将来的实验中演示同时进行横向聚焦和纵向压缩,从而获得适合于将来WDM目标实验的条件。未来的实验可能会使用螺线管在加速过程中横向聚焦未中和的离子束。最近的结果报道了在螺线管传输通道中传输高性能重离子束。此螺线管传输实验的主要目标是匹配并传输以空间电荷为主的离子束,并研究可能限制螺线管传输系统中离子束质量的相关电子云和气体效应。理想情况下,光束将建立布里渊流动条件(以回旋加速器频率的一半旋转)。正在研究可能降低光束质量的其他机制,例如聚焦场像差,光束光晕和晶格聚焦元件的分离。

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