中国电力 ›› 2023, Vol. 56 ›› Issue (12): 183-190.DOI: 10.11930/j.issn.1004-9649.202309022
易亚文1,2(), 江传宾2, 龚世玉3, 秦小元2, 赵静朴2, 李振兴3
收稿日期:
2023-09-06
出版日期:
2023-12-28
发布日期:
2023-12-28
作者简介:
易亚文(1979—),男,通信作者,硕士,高级工程师,从事水电站运行维护研究,E-mail: yiyawen@ctgpc.com.cn
基金资助:
Yawen YI1,2(), Chuanbin JIANG2, Shiyu GONG3, Xiaoyuan QIN2, Jingpu ZHAO2, Zhenxing LI3
Received:
2023-09-06
Online:
2023-12-28
Published:
2023-12-28
Supported by:
摘要:
为提高保护测量回路可靠性和保证电力系统安全运行,须及时解决保护装置的测量误差问题。针对保护测量回路,构建了基于因子分析与统计学技术的误差评估方法。该方法基于三相数据间具有线性强相关性的基本原理,对保护测量回路获取的三相电流进行了因子分析,构建了误差启动判据;基于因子分析的结果,采用统计学技术中的3种经典统计量和控制阈值实现了误差源定位,达到了误差小于5%的评估精度。仿真结果证明了基于因子分析与统计学技术的保护测量回路误差评估方法的有效性与准确性。
易亚文, 江传宾, 龚世玉, 秦小元, 赵静朴, 李振兴. 基于因子分析与统计学技术的保护测量回路误差评估[J]. 中国电力, 2023, 56(12): 183-190.
Yawen YI, Chuanbin JIANG, Shiyu GONG, Xiaoyuan QIN, Jingpu ZHAO, Zhenxing LI. Protection Loop Error Measurement Based on Factor Analysis and Statistics Technology[J]. Electric Power, 2023, 56(12): 183-190.
检测类别 | 取值范围 | 因子分析适合情况 | ||
λkmo | 0.00~0.50 | 不适合 | ||
0.50~0.70 | 适合 | |||
0.70~1.00 | 很适合 | |||
λbar | 0.00~0.01 | 适合 | ||
0.01~1.00 | 不适合 |
表 1 前提性检验KMO&Bartlett
Table 1 Preliminary test of KMO and Bartlett
检测类别 | 取值范围 | 因子分析适合情况 | ||
λkmo | 0.00~0.50 | 不适合 | ||
0.50~0.70 | 适合 | |||
0.70~1.00 | 很适合 | |||
λbar | 0.00~0.01 | 适合 | ||
0.01~1.00 | 不适合 |
KMO检验 | Bartlett检验 | |||||
取样适切性量数 | 近似卡方 | 自由度 | 显著度 | |||
0.753 | 1876.019 | 3.000 | 0.000 |
表 2 前提性检验结果
Table 2 Preliminary test results
KMO检验 | Bartlett检验 | |||||
取样适切性量数 | 近似卡方 | 自由度 | 显著度 | |||
0.753 | 1876.019 | 3.000 | 0.000 |
三相 数据 | 因子编号 | 方差解释表 | ||||||
特征值 | 方差解释率/% | 累积方差贡献率/% | ||||||
无误差 | 1 | 1.501 | 50.025 | 50.025 | ||||
2 | 1.499 | 49.975 | 100.000 | |||||
3 | 4.178×10–16 | 1.393×10–614 | 100.000 | |||||
有误差 | 1 | 1.500 | 50.004 | 50.004 | ||||
2 | 1.099 | 36.624 | 86.629 | |||||
3 | 0.401 | 13.371 | 100.000 |
表 3 公共因子个数选取
Table 3 Selection of the number of common factors
三相 数据 | 因子编号 | 方差解释表 | ||||||
特征值 | 方差解释率/% | 累积方差贡献率/% | ||||||
无误差 | 1 | 1.501 | 50.025 | 50.025 | ||||
2 | 1.499 | 49.975 | 100.000 | |||||
3 | 4.178×10–16 | 1.393×10–614 | 100.000 | |||||
有误差 | 1 | 1.500 | 50.004 | 50.004 | ||||
2 | 1.099 | 36.624 | 86.629 | |||||
3 | 0.401 | 13.371 | 100.000 |
统计算法 | 统计量最大值 | 优化控制阈值 | 灵敏度 | |||
Q | 0.3486 | 0.3355 | 1.039 | |||
| 1139.0360 | 1089.1460 | 1.046 | |||
T2 | 3.1960 | 2.0020 | 1.593 |
表 4 不同统计算法的灵敏度分析
Table 4 Sensitivity analysis of different statistical algorithms
统计算法 | 统计量最大值 | 优化控制阈值 | 灵敏度 | |||
Q | 0.3486 | 0.3355 | 1.039 | |||
| 1139.0360 | 1089.1460 | 1.046 | |||
T2 | 3.1960 | 2.0020 | 1.593 |
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