It is important for the safety of transmission system to accurately calculate single-phase earth fault current distribution.Features of double sided elimination method were illustrated.Quantitative calculation of sing...It is important for the safety of transmission system to accurately calculate single-phase earth fault current distribution.Features of double sided elimination method were illustrated.Quantitative calculation of single-phase earth fault current distribution and case verification were accomplished by using the loop method.Influences of some factors,such as single-phase earth fault location and ground resistance of poles,on short-circuit current distribution were discussed.Results show that:1) results of the loop method conform to those of double sided elimination method;2) the fault location hardly influences macro-distribution of short-circuit current.However,current near fault location is evidently influenced;and 3) the short-circuit current distribution is not so sensitive to the ground resistance of poles.展开更多
This paper analyzes the effects of the voltage across insulator of 69 kV and 24 kV lines installed on the same pole. The case studies illustrated the lightning strike to direct top pole and mid span of ground wire usi...This paper analyzes the effects of the voltage across insulator of 69 kV and 24 kV lines installed on the same pole. The case studies illustrated the lightning strike to direct top pole and mid span of ground wire using the ATP-EMTP (Alternative Transient Program-Electromagnetic Transient Program). The results found that when lightning strike the voltage across the 69 kV line insulator at mid span is 1.55 times and 1.34 times higher than at top pole when the front time is 0.25/100μs and 10/350 μs, respectively. When lightning strike the voltage across the 24 kV line at mid span is 1.04 times and 0.64 times higher than at top pole when the front time is 0.25/100μs and 10/350μs, respectively. So the effect of lightning strike is more severe at mid span than at the direct top pole, especially for the 69 kV insulator.展开更多
为满足光纤复合架空地线(OPGW)直流融冰的需要,同时解决环流损耗和易遭雷击断股等问题,须将OPGW接地方式由目前常用的逐塔接地改造为分段或全线绝缘、单点接地方式;OPGW经地线绝缘子及其并联放电间隙与杆塔相连。为此,提出了OPGW直流融...为满足光纤复合架空地线(OPGW)直流融冰的需要,同时解决环流损耗和易遭雷击断股等问题,须将OPGW接地方式由目前常用的逐塔接地改造为分段或全线绝缘、单点接地方式;OPGW经地线绝缘子及其并联放电间隙与杆塔相连。为此,提出了OPGW直流融冰绝缘化改造对并联放电间隙的电气要求,分别对正常运行时、地线直流融冰条件下和雷击情况下的并联放电间隙电气性能进行了详细的计算分析和试验研究。结果表明:并联放电间隙距离选择应满足感应电压和直流融冰电压的耐受要求,还应保证并联放电间隙在雷电过电压下可靠击穿;要满足工频感应电压的耐受要求,间隙距离可取20~100 mm;要满足直流融冰电压为-20 k V×(1±10%)的耐受要求,间隙距离应大于60 mm;考虑到间隙放电的分散性,间隙距离宜适当增大,推荐值为70~80 mm;70~80 mm间隙距离的雷电冲击放电电压一般不大于100 k V,线路遭受雷击时,地线绝缘子与并联放电间隙所承受的电压至少为885 k V,甚至高达数MV,并联放电间隙能可靠击穿,从而确保地线绝缘子的运行安全性。该研究结果可为OPGW直流融冰绝缘化改造提供理论支撑和数据支持。展开更多
建立了避雷线全线绝缘架设的输电线路雷击模型,研究了雷电流幅值、杆塔接地电阻和杆塔档距对杆塔处雷电流分配特性的影响规律。研究结果发现:雷电流较小的情况下,雷电流分配主要受避雷线绝缘间隙击穿个数的影响;如雷电流幅值为1 k A时,...建立了避雷线全线绝缘架设的输电线路雷击模型,研究了雷电流幅值、杆塔接地电阻和杆塔档距对杆塔处雷电流分配特性的影响规律。研究结果发现:雷电流较小的情况下,雷电流分配主要受避雷线绝缘间隙击穿个数的影响;如雷电流幅值为1 k A时,避雷线绝缘架设和直接接地时的分流系数最大差别为9%;雷电流幅值大于20 k A,击穿间隙个数等于或大于5个时,雷电流分配不再受避雷线绝缘架设的影响,而是主要受杆塔接地电阻的影响。因此计算线路的耐雷水平时不需要考虑避雷线绝缘架设的影响。展开更多
文摘It is important for the safety of transmission system to accurately calculate single-phase earth fault current distribution.Features of double sided elimination method were illustrated.Quantitative calculation of single-phase earth fault current distribution and case verification were accomplished by using the loop method.Influences of some factors,such as single-phase earth fault location and ground resistance of poles,on short-circuit current distribution were discussed.Results show that:1) results of the loop method conform to those of double sided elimination method;2) the fault location hardly influences macro-distribution of short-circuit current.However,current near fault location is evidently influenced;and 3) the short-circuit current distribution is not so sensitive to the ground resistance of poles.
文摘This paper analyzes the effects of the voltage across insulator of 69 kV and 24 kV lines installed on the same pole. The case studies illustrated the lightning strike to direct top pole and mid span of ground wire using the ATP-EMTP (Alternative Transient Program-Electromagnetic Transient Program). The results found that when lightning strike the voltage across the 69 kV line insulator at mid span is 1.55 times and 1.34 times higher than at top pole when the front time is 0.25/100μs and 10/350 μs, respectively. When lightning strike the voltage across the 24 kV line at mid span is 1.04 times and 0.64 times higher than at top pole when the front time is 0.25/100μs and 10/350μs, respectively. So the effect of lightning strike is more severe at mid span than at the direct top pole, especially for the 69 kV insulator.
文摘为满足光纤复合架空地线(OPGW)直流融冰的需要,同时解决环流损耗和易遭雷击断股等问题,须将OPGW接地方式由目前常用的逐塔接地改造为分段或全线绝缘、单点接地方式;OPGW经地线绝缘子及其并联放电间隙与杆塔相连。为此,提出了OPGW直流融冰绝缘化改造对并联放电间隙的电气要求,分别对正常运行时、地线直流融冰条件下和雷击情况下的并联放电间隙电气性能进行了详细的计算分析和试验研究。结果表明:并联放电间隙距离选择应满足感应电压和直流融冰电压的耐受要求,还应保证并联放电间隙在雷电过电压下可靠击穿;要满足工频感应电压的耐受要求,间隙距离可取20~100 mm;要满足直流融冰电压为-20 k V×(1±10%)的耐受要求,间隙距离应大于60 mm;考虑到间隙放电的分散性,间隙距离宜适当增大,推荐值为70~80 mm;70~80 mm间隙距离的雷电冲击放电电压一般不大于100 k V,线路遭受雷击时,地线绝缘子与并联放电间隙所承受的电压至少为885 k V,甚至高达数MV,并联放电间隙能可靠击穿,从而确保地线绝缘子的运行安全性。该研究结果可为OPGW直流融冰绝缘化改造提供理论支撑和数据支持。
文摘建立了避雷线全线绝缘架设的输电线路雷击模型,研究了雷电流幅值、杆塔接地电阻和杆塔档距对杆塔处雷电流分配特性的影响规律。研究结果发现:雷电流较小的情况下,雷电流分配主要受避雷线绝缘间隙击穿个数的影响;如雷电流幅值为1 k A时,避雷线绝缘架设和直接接地时的分流系数最大差别为9%;雷电流幅值大于20 k A,击穿间隙个数等于或大于5个时,雷电流分配不再受避雷线绝缘架设的影响,而是主要受杆塔接地电阻的影响。因此计算线路的耐雷水平时不需要考虑避雷线绝缘架设的影响。