An advanced solid-state RF power source maximizing energy efficiency for optimal superconducting RF cavity charging

IF 1.4 4区 计算机科学 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC International Journal of Microwave and Wireless Technologies Pub Date : 2024-02-29 DOI:10.1017/s1759078724000205
Long Hoang Duc, Dragos Dancila
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Abstract

This paper outlines an experimental demonstration of an envelope tracking (ET) technique applied to a kilowatt-level single-ended solid-state power amplifier (SSPA), aimed at enhancing the charging efficiency of superconducting radio frequency (SRF) cavities by reducing reflection power while maintaining a high degree of efficiency. The technique is particularly designed for the pulsed operation of the European Spallation Source (ESS) at a nominal frequency of 352 MHz, with a 5% duty cycle and a pulse width of 3.5 ms. The study introduces an optimal charging scheme using a solid-state-based amplifier to maintain high efficiency, allowing for power ramp-up while minimizing reflections from SRF cavities and optimizing SSPA efficiency. A fast envelope tracking power supply (ETPS) system is implemented for the approximately 300 ms charging time required by the SRF cavities at ESS. The ETPS system, demonstrated on a single module as a proof-of-concept with scalability potential to a 400 kW power station, indicates an overall average efficiency of 70% and a 24% energy saving over traditional vacuum-tube based amplifiers. This demonstrates the ET technique’s effectiveness at the kilowatt level for efficient SRF cavity charging with reduced reflection, offering significant efficiency and energy savings.
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先进的固态射频电源,最大限度地提高能量效率,实现最佳超导射频腔充电
本文概述了应用于千瓦级单端固态功率放大器(SSPA)的包络跟踪(ET)技术的实验演示,该技术旨在通过在保持高效率的同时降低反射功率来提高超导射频(SRF)腔的充电效率。该技术特别针对欧洲溅射源(ESS)的脉冲运行而设计,额定频率为 352 MHz,占空比为 5%,脉冲宽度为 3.5 ms。研究引入了一种使用固态放大器的优化充电方案,以保持高效率,在允许功率升压的同时,最大限度地减少来自 SRF 空腔的反射,优化 SSPA 效率。针对ESS的SRF空腔所需的约300毫秒充电时间,实施了快速包络跟踪电源(ETPS)系统。作为概念验证,ETPS 系统在单个模块上进行了演示,可扩展至 400 千瓦的发电站,表明总体平均效率为 70%,比传统的真空管放大器节能 24%。这证明了 ET 技术在千瓦级高效 SRF 腔体充电方面的有效性,同时减少了反射,显著提高了效率并节约了能源。
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来源期刊
International Journal of Microwave and Wireless Technologies
International Journal of Microwave and Wireless Technologies ENGINEERING, ELECTRICAL & ELECTRONIC-TELECOMMUNICATIONS
CiteScore
3.50
自引率
7.10%
发文量
130
审稿时长
6-12 weeks
期刊介绍: The prime objective of the International Journal of Microwave and Wireless Technologies is to enhance the communication between microwave engineers throughout the world. It is therefore interdisciplinary and application oriented, providing a platform for the microwave industry. Coverage includes: applied electromagnetic field theory (antennas, transmission lines and waveguides), components (passive structures and semiconductor device technologies), analogue and mixed-signal circuits, systems, optical-microwave interactions, electromagnetic compatibility, industrial applications, biological effects and medical applications.
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