可控可靠大容量电网的超导技术

A. Malozemoff, B. Kehrli, J. Diazdeleon, S. Kalsi
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引用次数: 5

摘要

只提供摘要形式。超导体技术为当今输配电网面临的关键问题提供了解决方案,并将在未来的智能和大容量电网中发挥重要作用。这些技术中最著名的是超导地下输电电缆。凭借其高电流密度和低损耗,它提供了高功率容量,避免了更高的传输电压水平,对当地环境的影响最小,无论是热的还是电磁的,这使得在城市环境中密集的地下服务网络中安装成为可能。尤其划算的是通过现有管道进行改造,避免挖掘城市街道。不太为人所知的是屏蔽介质超导电缆的低感应阻抗,它可以减轻整个过载网络,并通过使用相角调节器实现交流电流控制。各种商业化前的演示正在全球范围内进行。SuperVAR(tm)动态同步冷凝器,基于高温超导转子线圈的旋转机器是未来电网的另一项关键技术,其中第一个已经在今天的测试站点。这些机器在短时间内提供高水平的无功补偿,因为它们的同步电抗非常低,这源于它们紧凑和无铁的设计。这些紧凑型冷凝器通常包装在容器中,可以方便地安装在变电站或直接安装在整个电网的负载或发电站点,并将对稳定电网防止电压不稳定和停电产生重大影响。它们补充了已经在商业上销售的先进电力电子解决方案。超导体故障限流器是解决日益增长的城市环境中故障电流水平不断上升这一关键问题的另一项关键技术。该设备利用超导体在临界电流以上向正常阻性状态的转变。随着先进高温超导体线的商业化进展,该技术的商业应用前景增强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Superconducting technologies for a controllable and reliable high capacity grid
Summary form only given. Superconductor technologies offer solutions to critical problems facing the power transmission and distribution grid today and will play a major role in the smart and high capacity grid of the future. The best known of these technologies is superconductor underground power transmission cable. By virtue of its high current density and low losses, it offers high power capacity, avoiding higher transmission voltage levels, with minimal local environmental impact, either thermal or electromagnetic, which enables installation in the midst of a dense underground network of services typical of urban environments. Particularly cost-effective will be retrofit installations through existing conduits, avoiding the digging up of city streets. Less well known is the low inductive impedance of the shielded dielectric superconducting cables, which can relieve an entire overloaded network and enable AC current control through the use of a phase angle regulator. A variety of precommercial demonstrations are underway around the globe. SuperVAR(tm) dynamic synchronous condensers, rotating machines based on high temperature superconductor rotor coils are another key technology for the future grid, the first of which is already in a beta site today. These machines provide a high level of reactive compensation on short time scales, by virtue of their remarkably low synchronous reactance which stems from their compact and iron-free design. Typically packaged in containers, these compact condensers can be conveniently sited at substations or directly at load or generation sites throughout the grid and will have a major impact in stabilizing the grid against voltage instability and outage. They complement advanced power electronic solutions which are already being sold commercially. Superconductor fault current limiters are another key technology which addresses the critical problem of ever rising fault current levels in ever growing urban environments. This equipment exploits the superconductor transition to the normal resistive state above a critical current. Prospects for commercial application of this technology are enhanced by progress in commercializing advanced higher temperature superconductor wire.
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