同步相量技术:与传统测量相比的应用和优势

Andrew M. Berg, H. Salehfar, A. Nejadpak
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引用次数: 4

摘要

同步相量技术是电力系统日益关注的一个领域。该技术能够快速,时间同步的数据,包括电学测量的相位角。当能源管理系统(EMS)能够访问不同电测量的相量表示时,它打开了更精确的系统监控的可能性。在传统的测量方案中,状态估计依赖于震级测量、电力计量、低分辨率数据和电网设施(如输电线路)的物理估计。不难看出,对这个庞大系统的物理估计会极大地影响系统监控的准确性。在本文中,数据分析和数学概念是主要的分析方法。评估的措施包括频率响应、误差测量和干扰识别。在进行的分析中,已经发现频率可以直接与故障事件联系起来。此外,相对于传统状态估计,同步量数据的总矢量误差(TVE)接近1%的兼容水平,以获得足够的误差容忍度。虽然这不是一个完全的成功,但它确实表明基于同步量的状态估计器方案可以很好地支持数据的遵从性。如果状态估计器得到高分辨率相量测量的支持,那么可以想象,这将满足行业标准设定的目标。最后,还分析了风暴条件的干扰,观察到一些明显的电压扰动。这些快速、详细的电网测量可以缓解电力系统日益复杂所带来的问题。同步相量技术在广域监测和系统感知方面具有真正的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synchrophasor technology: Applications and benefits over conventional measurement
Synchrophasor technology is a growing area of interest for the electric power system. The technology is capable of fast, time-synchronized data that includes phase angles of the electrical measurements. When the energy management system (EMS) has access to the phasor representations of different electrical measurements, it opens the possibilities of more precise system monitoring. In the conventional measurement schemes, state estimation is dependent on magnitude measurements, power metering, low-resolution data, and physical estimates of grid facilities, such as transmission lines. It is not difficult to see that physical estimates of this expansive system can dramatically impact the accuracy of system monitoring. In this paper, data analysis and mathematical concepts are the primary methods of analysis. Measures for the evaluation involve frequency response, error measurements, and interference identification. In the analysis performed, it has been found that frequency can be directly linked to fault events. Also, the total vector error (TVE) of the synchrophasor data with respect to the conventional state estimations is near the compliant level of 1% for sufficient error tolerance. Although this is not a complete success, it does suggest that a synchrophasor-based state estimator scheme may very well support the compliance of the data. If the state estimator were supported by the high-resolution phasor measurements, this would conceivably satisfy the goals set forth by industry standards. Lastly, interference from storm conditions has also been analyzed, and some significant voltage disturbances were observed. These quick, detailed grid measurements could alleviate issues that have resulted from growing power system complexity. Synchrophasor technology has real potential for wide-area monitoring and system awareness.
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