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A Magnetic Core Permeance Model for Inductive Power Harvesting

机译:用于感应功率收集的磁芯磁导模型

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A current transformer (CT) is a preferred device to harvest power in the high-voltage utility grid to power monitoring equipment. Widespread CT use is foreseen in future smart grid deployment. The most common CT use involves a laminated transformer iron split core installation around a high-voltage cable with a particular number of turns to power a load or burden. Less common is a gapless core installation to improve reliability and prevent CT degradation by avoiding gap corrosion. Even laminated high resistivity cores still suffer from eddy current loss. The goal is to design a core able to deliver the desired power at optimum number of turns, minimized dimensions, and minimal loss. This article focuses on the core permeance as a complex parameter, on core size, losses or efficiency, load impedance optimization, flux level, power factor performance, and the relationship between these parameters. A similar size split core shows reduced loss compared to a gapless core. Lossy cores can still operate relatively efficiently at low flux levels indicating that the load current should preferably approach the short circuit current. Notwithstanding nanocrystalline and ferrite material advantages, silicon-doped laminated iron remains the preferred choice for 5060 Hz inductive power harvesting.
机译:电流互感器(CT)是一种用于收集高压公用电网中的电能以监视设备的首选设备。在未来的智能电网部署中,预计将广泛使用CT。 CT最常见的用途是在高压电缆周围安装层压变压器铁心分裂铁心,并通过特定匝数为负载或负载供电。较不常见的是无间隙铁芯安装,以通过避免间隙腐蚀来提高可靠性并防止CT退化。甚至层压的高电阻率磁芯仍会遭受涡流损耗。目标是设计一种能够以最佳匝数,最小化尺寸和最小损耗提供所需功率的磁芯。本文重点介绍作为复杂参数的磁芯导磁率,磁芯尺寸,损耗或效率,负载阻抗优化,磁通水平,功率因数性能以及这些参数之间的关系。与无间隙磁芯相比,类似尺寸的分裂磁芯显示出降低的损耗。有损磁芯仍可以在低通量水平下相对高效地运行,这表明负载电流最好应接近短路电流。尽管具有纳米晶体和铁氧体材料的优势,但掺硅叠层铁仍是5060 Hz感应功率收集的首选。

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