An overview of high voltage dielectric material for traveling wave kicker magnet application

Wu Zhang, J. Sandberg, J. Tuozzolo, R. Cassel, L. Ducimetière, C. Jensen, M. Barnes, G. Wait, J. Wang
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引用次数: 3

Abstract

Pulsed high power fast kickers are being used to change beam trajectories in particle accelerators. The fast rise and fall time of pulse waveform demands a transmission line structure for the kicker deflector design. The ideal design will be parallel metal plates. However, it uses very long straight sections to achieve the required deflection. In accelerators with constrained straight sections, high permeability materials such as ferrite have to be used to gain deflection efficiency. The transmission line kicker magnet is also referred as traveling wave kicker magnet. Its construction is based on distributed L-C cells along the longitudinal direction. The magnetic cells and capacitive cells are interleaved to simulate the characteristic impedance of a transmission line to minimize pulse reflection, and provide adequate frequency bandwidth to transmit the kicker pulse with fast rise and fall time. The magnetic cells are usually made of fertile ceramics, but the capacitive cells have been made with different materials. For traveling wave kickers with higher impedance, the parallel plate vacuum capacitor has been used in CERN and KEK design. Others have used ceramic capacitors, printed circuit boards, and high permittivity ceramics as the capacitive cell. The high dielectric material has the advantage of compactness for low impedance kicker magnet construction. It continues to be very attractive for future kicker magnet applications. The high voltage phenomena associated with high dielectric ceramic materials have been widely reported in many industrial application areas. Their implication in the traveling wave magnet application has to be well understood. In this presentation, the areas requiring further quantitative study will be outlined.
高压介质材料在行波踢磁体中的应用综述
脉冲高功率快速踢球器被用于改变粒子加速器中的束流轨迹。脉冲波形的快速上升和下降需要一种传输线结构来设计踢脚偏转器。理想的设计是平行的金属板。然而,它使用非常长的直段来实现所需的偏转。在直线截面受限的加速器中,必须使用高磁导率材料,如铁氧体,以获得偏转效率。传输线踢脚磁铁又称行波踢脚磁铁。它的构造是基于沿纵向分布的L-C单元。磁性单元和电容单元相互交错,模拟传输线的特性阻抗,以减少脉冲反射,并提供足够的频率带宽,以传输具有快速上升和下降时间的踢动脉冲。磁性电池通常由肥沃的陶瓷制成,而电容电池则由不同的材料制成。对于阻抗较高的行波踢脚,平行板真空电容器已在CERN和KEK设计中得到应用。其他人使用陶瓷电容器、印刷电路板和高介电常数陶瓷作为电容电池。高介电材料的优点是紧凑的低阻抗踢脚磁铁结构。它仍然是非常有吸引力的未来踢球磁铁应用。高介电陶瓷材料的高电压现象在许多工业应用领域得到了广泛的报道。它们在行波磁体应用中的意义必须得到很好的理解。在本报告中,将概述需要进一步定量研究的领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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