首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Design and development of a chopping and deflecting system for the high current injector at IUAC
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Design and development of a chopping and deflecting system for the high current injector at IUAC

机译:IUAC大电流喷射器斩波和偏转系统的设计和开发

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摘要

The Low Energy Beam Transport (LEBT) section of the High Current Injector (HCI) incorporates a Chopping cum Deflecting System (CDS). The CDS comprises of a deflecting system and a pair of slits that will remove dark current and produce time bunched beam of 60 ns at different repetition rates of 4, 2, 1, 0.5, 0.25 and 0.125 MHz. The distinguishing feature of the design is the use of a multi-plate deflecting structure with low capacitance to optimize the electric field, which in turn results in higher efficiency in terms of achievable ion current. To maximize the effective electric field and its uniformity, the gap between the deflecting plates has been varied and a semi-circular contour has been incorporated on the deflecting plates. Due to this the electric field variation is less than ±0.5% within the plate length. The length of deflecting plates was chosen to maximize the transmission efficiency. Since the velocity of the charged particles in the LEBT section is constant, therefore the separation between two successive sets of deflecting plates has been kept constant to match the ions transient time within the gap which is nearly 32 ns. A square pulse has been chosen, instead of a sinusoidal one, to increase the transmission efficiency and to decrease the tailing effect. The loaded capacitance of the structure was kept <10 pF to achieve fast rise/fall time of the applied voltage signal. A Python code has been developed to verify the various design parameters. The simulation also shows that one can get an efficient deflection of undesired particles resulting in >90% transmission efficiency with in the bunch length. Various simulation codes like Solid Works, TRACE 3D, CST MWS and homebrew Python codes were used to validate the design.
机译:大电流注入器(HCI)的低能束传输(LEBT)部分集成了斩波和偏转系统(CDS)。 CDS包含一个偏转系统和一对狭缝,它们将消除暗电流并以4、2、1、0.5、0.25和0.125 MHz的不同重复率产生60ns的时间束。该设计的显着特征是使用具有低电容的多板偏转结构来优化电场,从而可实现更高的离子电流效率。为了使有效电场及其均匀性最大化,已经改变了偏转板之间的间隙,并且在偏转板上结合了半圆形轮廓。因此,在板长度内,电场变化小于±0.5%。选择偏转板的长度以最大化传输效率。由于LEBT部分中带电粒子的速度是恒定的,因此两套连续的偏转板之间的间隔保持恒定,以匹配间隙中接近32ns的离子瞬变时间。已选择方波而不是正弦波,以提高传输效率并减少拖尾效应。结构的负载电容保持<10 pF,以实现施加电压信号的快速上升/下降时间。已经开发了Python代码来验证各种设计参数。仿真还表明,可以在束长度内有效地偏转不需要的粒子,从而导致> 90%的传输效率。各种仿真代码(例如Solid Works,TRACE 3D,CST MWS和自制的Python代码)用于验证设计。

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