基于纳米介电材料的40kv小型电容器的设计与测试

K. O'connor, Robert B. Kutz, M. Miranda, R. Curry
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摘要

紧凑型脉冲电源系统通常受到高压储能所需电容器的尺寸和形状的限制。由于电容器的尺寸和形状以及连接端子的几何形状,马克思银行,脉冲形成网络和其他需要多个电容器的设备比必要的要大。电容器的尺寸和重量由电容器电介质的能量密度和周围绝缘的介电强度决定。虽然门把手式电容器通常在这些设备中实现,但圆柱形不允许有效地包装多个电容器来填充可用的体积。替代电容器,例如基于云母薄膜的电容器,具有改进的外形因素,但在许多组件中具有增加电感的末端端子。一项新的努力是通过用纳米介电材料制造电容器来解决这些设计问题。纳米介电复合材料将高介电常数的陶瓷颗粒与低介电常数、高介电强度的聚合物相结合,制备出高介电常数和高介电强度的材料[1]。这两种特性的结合使得比传统陶瓷具有更高的能量密度。复合材料也可以形成或加工成复杂的形状,包括矩形,圆柱形或同轴形状因素,以提高电容器封装密度,同时保持低电感连接。目前的工作重点是在反材料计划中为紧凑型电容器组开发40 kV, 2.5 nF电容器。在这篇文章中,讨论了新电容器的设计和仿真中的权衡。介绍了第一批样机和初步测试结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Testing of a Compact 40 KV Capacitor Based on Nanodielectric Composites
Compact pulsed power systems are often limited by the size and shape of the capacitors required for high voltage energy storage. Marx banks, pulse forming networks, and other devices requiring multiple capacitors are larger than necessary due to the size and shape of the capacitors as well as the geometry of the connection terminals. The size and weight of the capacitor are determined by the energy density of the capacitor dielectric and the dielectric strength of the surrounding insulation. While doorknob-style capacitors are commonly implemented in these devices, the cylindrical shape does not permit efficient packing of multiple capacitors to fill the available volume. Alternative capacitors, such as those based on mica films, have an improved form factor but have end terminations that add inductance in many assemblies. A new effort is addressing these design issues by building the capacitor with nanodielectric composites. The nanodielectric composites combine high dielectric constant ceramic particles with low dielectric constant, high dielectric strength polymers to produce materials with both high dielectric constant and high dielectric strength [1]. The combination of these two properties enables higher energy densities than possible with conventional ceramics. The composite materials can also be formed or machined into complex shapes, including rectangular, cylindrical, or coaxial form factors, to improve capacitor packing density while maintaining low inductance connections. The present effort is focused on development of 40 kV, 2.5 nF capacitors for compact capacitor banks in a counter-materiel program. In this contribution, the tradeoffs are discussed in the design and simulation of the new capacitors. The first prototypes are described with preliminary test results.
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