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Preliminary design of the pulse generator for the CLIC DR extraction system

机译:CLIC DR提取系统的脉冲发生器的初步设计

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The Compact Linear Collider (CLIC) study is exploring the scheme for an electron-positron collider with high luminosity (1034-1035 cm-2s-1) and a nominal centre-of-mass energy of 3 TeV: CLIC would complement LHC physics in the multi-TeV range. The CLIC design relies on the presence of Pre-Damping Rings (PDR) and Damping Rings (DR) to achieve the very low emittance, through synchrotron radiation, needed for the luminosity requirements of CLIC. To limit the beam emittance blowup due to oscillations, the pulse power modulators for the DR kickers must provide extremely flat, high-voltage, pulses: specifications call for a 160 ns duration flattop of 12.5 kV, 250 A, with a combined ripple and droop of not more than ±0.02%. In order to meet these demanding specifications, a combination of broadband impedance matching, optimized electrical layout and advanced control techniques is required. A solid-state modulator, the inductive adder, is the most promising approach to meeting the specifications; this topology allows the use of both digital and analogue modulation. To effectively use modulation to achieve such low ripple and droop requires an in-depth knowledge of the behaviour of the solid-state switching components and their gate drivers, as well as a thorough understanding of the overall circuit dynamics. Hence, circuit simulation tools have been employed to study the proposed inductive adder and various control schemes. This paper describes the initial design of the inductive adder and the use of active-filtering control algorithms for achieving the required pulse waveform.
机译:紧凑型线性对撞机(CLIC)研究正在探索一种具有高光度(1034-1035 cm-2s-1)和标称质心能量为3 TeV的电子-正电子对撞机的方案:CLIC将补充LHC物理学多TeV范围。 CLIC设计依靠预阻尼环(PDR)和阻尼环(DR)的存在,以通过同步加速器辐射实现CLIC发光度要求所需的非常低的发射率。为了限制由于振荡而引起的光束发射爆炸,DR踢脚的脉冲功率调制器必须提供非常平坦的高压脉冲:规范要求持续时间为12.5 kV,250 A的160 ns持续时间的平顶,并结合了纹波和下垂不超过±0.02%。为了满足这些苛刻的规格,需要结合宽带阻抗匹配,优化的电气布局和先进的控制技术。固态调制器(电感加法器)是满足规格的最有前途的方法。这种拓扑结构允许同时使用数字和模拟调制。为了有效地使用调制来实现如此低的纹波和下垂,需要对固态开关组件及其栅极驱动器的行为有深入的了解,并且需要对整个电路的动力学有透彻的了解。因此,已经使用电路仿真工具来研究所提出的电感加法器和各种控制方案。本文介绍了电感加法器的初始设计,以及如何使用有源滤波控制算法来实现所需的脉冲波形。

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