Design, Simulation, and Fabrication of a 500 kV Ultrawideband Coaxial Matched Load and Its Connectors for Fast Transient Pulse Measurement Systems

IF 3 4区 工程技术 Q3 ENERGY & FUELS Energies Pub Date : 2023-12-28 DOI:10.3390/en17010166
Mohammad Saif Khan, M. Agazar, Yann Le Bihan
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Abstract

In the past few decades, Pulsed Power (PP) has been one of the fastest growing technologies, with more and more systems frequently emerging in domains such as civil, medical and military. These systems are based on high-voltage pulses, up to several hundreds of kilovolts, with temporal parameters ranging from microsecond levels to sub-nanosecond levels. One of the biggest challenges in this technology is the accurate and precise measurement of the generated PP. The PP measurement systems must possess high-voltage and wideband properties simultaneously, which is often conflicting. The central elements of a PP measurement system are a voltage divider and a termination load. The work presented in this article is dedicated to the second element of the PP measurement system. This paper describes the development of a 50 Ω coaxial termination load and its connectors for a high power ultrawideband (UWB) pulse measurement systems. The principle roles of these devices are to serve as a dummy matched load for the former and to facilitate the connections between different components of the pulse measurement system for the latter. These devices are designed to withstand pulse voltage amplitudes at least up to 500 kV with temporal parameters, such as rise time and pulse duration, varying from nanosecond to sub-nanosecond ranges. The main challenge in the development of a high-voltage UWB termination load is the tradeoff between the high-voltage and wideband characteristics, both of them requiring opposite dimensional aspects for the load device. This challenge is overcame by the special exponential geometry of the load device. The design employs a 30 cm long low-inductance tubular ceramic 50 Ω resistor, enclosed in a critically dimensioned shielding conductor of an exponential inner profile. This shrinking coaxial structure makes it possible to maintain a good level of matching all along the 50 Ω load. The results obtained through 3D electromagnetic modeling and vector network analyzer measurements show good agreement and confirm the reflection coefficient below −27 dB up to at least 2.5 GHz for the load device. Moreover, calculations demonstrate that the load device is very well adapted for nanosecond and sub-nanosecond pulses with voltage peaks as high as 500 kV. These results demonstrate the high-voltage and UWB properties of the developed load device and prove the utilization of this device in the measurement systems for the accurate and precise measurements of the PP.
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设计、模拟和制造用于快速瞬态脉冲测量系统的 500 kV 超宽带同轴匹配负载及其连接器
在过去几十年里,脉冲功率(PP)是发展最快的技术之一,越来越多的系统频繁出现在民用、医疗和军事等领域。这些系统基于高达数百千伏的高压脉冲,时间参数从微秒级到亚纳秒级不等。这项技术面临的最大挑战之一是如何准确和精确地测量产生的聚丙烯。聚丙烯测量系统必须同时具备高压和宽带特性,而这往往是相互矛盾的。PP 测量系统的核心元件是分压器和终端负载。本文介绍的工作致力于 PP 测量系统的第二个要素。本文介绍了用于大功率超宽带 (UWB) 脉冲测量系统的 50 Ω 同轴终端负载及其连接器的开发情况。这些设备的主要作用是作为前者的假匹配负载,以及为后者的脉冲测量系统不同组件之间的连接提供便利。这些设备可承受至少高达 500 kV 的脉冲电压幅值,其时间参数(如上升时间和脉冲持续时间)从纳秒到亚纳秒不等。开发高电压 UWB 终端负载的主要挑战在于如何权衡高电压和宽带特性,两者对负载器件的尺寸要求截然相反。负载装置的特殊指数几何形状克服了这一难题。该设计采用了一个 30 厘米长的低电感管状 50 Ω 陶瓷电阻器,并将其封闭在一个内部轮廓呈指数型的关键尺寸屏蔽导体中。这种缩小的同轴结构使 50 Ω 负载沿线保持良好的匹配水平成为可能。通过三维电磁建模和矢量网络分析仪测量获得的结果显示出良好的一致性,并确认负载装置的反射系数低于 -27 dB,频率至少可达 2.5 GHz。此外,计算结果表明,该负载装置非常适合电压峰值高达 500 kV 的纳秒和亚纳秒脉冲。这些结果证明了所开发负载装置的高电压和 UWB 特性,并证明了在测量系统中使用该装置可以准确和精确地测量 PP。
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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来源期刊
Energies
Energies ENERGY & FUELS-
CiteScore
6.20
自引率
21.90%
发文量
8045
审稿时长
1.9 months
期刊介绍: Energies (ISSN 1996-1073) is an open access journal of related scientific research, technology development and policy and management studies. It publishes reviews, regular research papers, and communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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