用于电气装置中继保护系统的测量传感器的建模
Iliya Iliev1, Andrey Kryukov2,3, Konstantin Suslov4,5
1Department of Heat, Hydraulics and Environmental Engineering, "Angel Kanchev" University of Ruse, 7017 Ruse, Bulgaria.
Sensors (Basel, Switzerland)
|January 25, 2025
概括
精确的继电器保护和自动化 (RPA) 设置对于电力系统 (EPS) 是至关重要的. 新的相位坐标建模方法改善了RPA设备和操作模式计算,提高了电力系统的稳定性.
科学领域:
- 电气工程 电气工程
- 电力系统分析 分析 分析
- 控制系统 控制系统
背景情况:
- 电力系统 (EPS) 继电器保护和自动化 (RPA) 设置的传统方法依赖于对称元件,这可能会在操作模式识别和RPA设备建模中引入错误.
- 测量变压器 (MTs) 和对称组件过器 (SCF) 的准确建模对于可靠的RPA系统配置至关重要.
研究的目的:
- 开发和验证一种用于模拟电力系统 (EPS) 的新方法,以相坐标为准确的继电器保护和自动化 (RPA) 设置.
- 改进操作模式的识别和RPA设备的建模,包括测量变压器 (MT) 和对称组件过器 (SCF).
主要方法:
- 以相位坐标建模EPS,同时确定高压网络操作模式和二次电路行为.
- 开发MT和SCF的特定模型来分析二次布线电路和电流.
- 在140种不同的操作模式下使用计算电流和电压进行电力输电线路的参数识别.
主要成果:
- 拟议的相位坐标建模准确地识别了运行模式和模型RPA设备,包括MT和SCF.
- 电力传输线路的参数识别和模型调整导致电压模块和相位的高精度.
- 当前模块的平均误差为0.6%,当前角度为0.26°,证明了模型的有效性.
结论:
- 阶段坐标建模方法有效地解决了配置RPA系统的实际挑战.
- 这种方法提高了电力系统中运行模式计算和RPA设备建模的准确性.
- 经过验证的模型适用于在传统和网络物理电力系统中建立继电器保护和自动化.
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