同步相量:入门及实际应用

J. Sykes, K. Koellner, W. Premerlani, B. Kasztenny, M. Adamiak
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引用次数: 20

摘要

虽然同步相量的概念和定义可以追溯到1980年,但第二代IED平台和电力系统需求的结合使该技术在电力行业获得了很高的知名度。随着同步相量技术的成熟,同步相量测量的细微差别已经被确定,并且如何定义相量的细节,同步到绝对时间,报告和通信随后被重新编入最近修订的IEEE标准:电力系统同步相量- C37.118。本文根据IEEE C37.118标准对同步相量的概念进行了综述。具体来说,详细介绍了在非标称频率条件下的基于傅立叶的四组校正相量以及校正技术以满足同步相量标准。提出了IED输入变压器和滤波器特性/校正的必要性。给出了各种系统瞬态及其相量响应的仿真,特别是同步相量计算对动态系统条件的响应。最后,综述了同步量在SRP系统中的应用现状以及未来的发展计划和需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synchrophasors: A primer and practical applications
Although the concept and definition of Synchrophasors dates back to 1980, the combination of 2nd generation IED platforms and power system needs has brought the technology into high-visibility in the electric power industry. As synchrophasor technology has matured, nuances of the measurement of a synchronized phasor have been identified and the details of ldquohowrdquo a phasor is defined, synchronized to absolute time, reported, and communicated have subsequently been re-codified int he recently revised IEEE standard: Synchrophasors for Power Systems - C37.118. This paper reviews the concept of the synchronized phasor in light of the IEEE C37.118 standard. Specifically, details of an ldquoun-correctedrdquo Fourier based phasor during off-nominal frequency conditions are presented as well as techniques for correction to meet the Synchrophasor standard. The need for IED input transformer and filter characterization / correction is presented. Simulations of various system transients and their phasor response are presented - specifically, the response of synchrophasor calculation to dynamic system conditions. Finally, this paper reviews application of synchrophasors on the SRP system today as well as plans and needs in the future.
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