Electric Power ›› 2025, Vol. 58 ›› Issue (8): 12-22, 30.DOI: 10.11930/j.issn.1004-9649.202408060
• Flexible Resource Planning Operation and Dynamic Control of AC/DC Power Distribution System • Previous Articles Next Articles
					
													JI Xingquan1(
), MAO Huizong1(
), YE Pingfeng2(
), LIU Zhiqiang3, ZHANG Xiangxing1, HUANG Xinyue1, NI Yachao4
												  
						
						
						
					
				
Received:2024-08-17
															
							
															
							
															
							
																	Online:2025-08-26
															
							
							
																	Published:2025-08-28
															
							
						Supported by:JI Xingquan, MAO Huizong, YE Pingfeng, LIU Zhiqiang, ZHANG Xiangxing, HUANG Xinyue, NI Yachao. Single-Pole High-Resistance Grounding Protection for DC Distribution Lines Based on Current Integral Quantity Correlation[J]. Electric Power, 2025, 58(8): 12-22, 30.
| 设备 | 参数 | 数值 | ||
| MMC换流器 | 电压变比 | AC 10 kV/DC±10 kV | ||
| 容量/(MV·A) | 10 | |||
| 子模块数量 | 50 | |||
| 子模块电容/mF | 10 | |||
| 桥臂电感/mH | 5 | |||
| 直流电缆 | L1长度/km | 2 | ||
| 电阻/(Ω·km–1) | ||||
| 电感/(H·km–1) | ||||
| 电容(μF·km–1) | 1.372 | |||
| 光伏 | 工作模式 | 最大功率点跟踪 | ||
| 光照强度/(W·m–2) | ||||
| 功率/MW | 0.5 | |||
| 储能 | 功率/MW | 1 | ||
| 风电 | 功率/MW | 0.5 | ||
| 直流负荷 | 功率/MW | 1 | 
Table 1 DC distribution system parameters
| 设备 | 参数 | 数值 | ||
| MMC换流器 | 电压变比 | AC 10 kV/DC±10 kV | ||
| 容量/(MV·A) | 10 | |||
| 子模块数量 | 50 | |||
| 子模块电容/mF | 10 | |||
| 桥臂电感/mH | 5 | |||
| 直流电缆 | L1长度/km | 2 | ||
| 电阻/(Ω·km–1) | ||||
| 电感/(H·km–1) | ||||
| 电容(μF·km–1) | 1.372 | |||
| 光伏 | 工作模式 | 最大功率点跟踪 | ||
| 光照强度/(W·m–2) | ||||
| 功率/MW | 0.5 | |||
| 储能 | 功率/MW | 1 | ||
| 风电 | 功率/MW | 0.5 | ||
| 直流负荷 | 功率/MW | 1 | 
| 故障位置 | 过渡电阻/Ω | 正极相关性系数 | 负极相关性系数 | 保护情况 | ||||
| 区内 | 20 | – | 动作 | |||||
| 70 | – | 动作 | ||||||
| 200 | – | 动作 | ||||||
| 500 | – | 动作 | ||||||
| 750 | – | 动作 | ||||||
| 区外 | 30 | 不动作 | ||||||
| 70 | 不动作 | |||||||
| 200 | 不动作 | |||||||
| 500 | 不动作 | |||||||
| 750 | 不动作 | 
Table 2 Fault protection in current integral quantity method
| 故障位置 | 过渡电阻/Ω | 正极相关性系数 | 负极相关性系数 | 保护情况 | ||||
| 区内 | 20 | – | 动作 | |||||
| 70 | – | 动作 | ||||||
| 200 | – | 动作 | ||||||
| 500 | – | 动作 | ||||||
| 750 | – | 动作 | ||||||
| 区外 | 30 | 不动作 | ||||||
| 70 | 不动作 | |||||||
| 200 | 不动作 | |||||||
| 500 | 不动作 | |||||||
| 750 | 不动作 | 
| 故障位置 | 过渡电阻/Ω | 正极相关性系数 | 负极相关性系数 | 保护情况 | ||||
| 区内 | 20 | – | 动作 | |||||
| 70 | – | 动作 | ||||||
| 200 | – | 不动作 | ||||||
| 500 | 不动作 | |||||||
| 750 | 不动作 | |||||||
| 区外 | 30 | 不动作 | ||||||
| 70 | 不动作 | |||||||
| 200 | 不动作 | |||||||
| 500 | 不动作 | |||||||
| 750 | 不动作 | 
Table 3 Fault protection in current sudden change method
| 故障位置 | 过渡电阻/Ω | 正极相关性系数 | 负极相关性系数 | 保护情况 | ||||
| 区内 | 20 | – | 动作 | |||||
| 70 | – | 动作 | ||||||
| 200 | – | 不动作 | ||||||
| 500 | 不动作 | |||||||
| 750 | 不动作 | |||||||
| 区外 | 30 | 不动作 | ||||||
| 70 | 不动作 | |||||||
| 200 | 不动作 | |||||||
| 500 | 不动作 | |||||||
| 750 | 不动作 | 
| 故障位置 | 过渡电阻/Ω | 正极相关性系数 | 负极相关性系数 | 动作情况 | ||||
| 区内 | 30 | – | 动作 | |||||
| 70 | – | 动作 | ||||||
| 200 | – | 动作 | ||||||
| 450 | – | 动作 | ||||||
| 500 | – | 动作 | ||||||
| 区外 | 30 | 不动作 | ||||||
| 70 | 不动作 | |||||||
| 200 | 不动作 | |||||||
| 450 | 不动作 | |||||||
| 500 | 不动作 | 
Table 4 Fault protection with 10 dB noise
| 故障位置 | 过渡电阻/Ω | 正极相关性系数 | 负极相关性系数 | 动作情况 | ||||
| 区内 | 30 | – | 动作 | |||||
| 70 | – | 动作 | ||||||
| 200 | – | 动作 | ||||||
| 450 | – | 动作 | ||||||
| 500 | – | 动作 | ||||||
| 区外 | 30 | 不动作 | ||||||
| 70 | 不动作 | |||||||
| 200 | 不动作 | |||||||
| 450 | 不动作 | |||||||
| 500 | 不动作 | 
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