Haigang Zhang, Ming Yin, Haoqiang Zhou, Song Zeng, Zizhuo Wang, Junpeng Xu, Bulai Wang, Jinbai Zou
{"title":"基于单调谐滤波器和 C 型滤波器组合的铁路牵引供电系统高频谐振抑制技术","authors":"Haigang Zhang, Ming Yin, Haoqiang Zhou, Song Zeng, Zizhuo Wang, Junpeng Xu, Bulai Wang, Jinbai Zou","doi":"10.2174/0122127976294622240314042341","DOIUrl":null,"url":null,"abstract":"\n\nRailroad transportation in the actual operation process, there are also\nmany dangerous accidents caused by resonance, which greatly affect the safety of railroad transportation.\nA comprehensive examination of the operational dynamics within the power branch of a\ntraction substation is imperative for sustaining system equilibrium. Discrepancies between these\nfacets pose a potential threat to the safety of railway transport. Thus, a meticulous analysis of highfrequency\nresonance characteristics and the formulation of effective suppression techniques become\nparamount.\n\n\n\nHarmonics from grid-side locomotive traction braking are scrutinized under different\noperational scenarios and different train runs. The aim is to develop an effective harmonic management\nstrategy to normalize the THD and thus maintain the traction power supply system to become\nmore stable.\n\n\n\nThis study investigates the high-frequency harmonic resonance characteristics using a\ncontrol variable approach. Harmonics and negative sequences generated during locomotive traction\nbraking under different operating conditions are investigated by means of extensive analysis. These\nchallenges require the implementation of a harmonic management method. This method uses a\ncombination of two monotonic filters and a C filter in parallel. This method applies to different operating\nconditions and can dynamically adapt harmonics to changes in the number of trains, which\nis related to the actual dynamics of the traction power system closely.\n\n\n\nA comparative evaluation of seven operating conditions shows that the filter in this patent\nexceeds the efficiency of existing methods. The filter reduces the fluctuations during spectral\nchanges, and the voltage distortion rate decreases from the previous 2.33% to 0.55%, making it\nmore adaptable and promising effective harmonic management in high voltage and high current\nsituations.\n\n\n\nThrough multiple simulation tests, a synergistic configuration involving the C-type\nfilter and two single-tuned parallel connections under regenerative braking conditions emerges.\nThis refined, patented filter design not only mitigates the impact of negative sequence during the\nfiltration process but also substantially diminishes high harmonics and THD.\n","PeriodicalId":39169,"journal":{"name":"Recent Patents on Mechanical Engineering","volume":" 87","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-04-19","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"High-frequency Resonance Suppression of Railway Traction Power Supply\\nSystem Based on the Combination of Single-tuned and C-type Filters\",\"authors\":\"Haigang Zhang, Ming Yin, Haoqiang Zhou, Song Zeng, Zizhuo Wang, Junpeng Xu, Bulai Wang, Jinbai Zou\",\"doi\":\"10.2174/0122127976294622240314042341\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"\\n\\nRailroad transportation in the actual operation process, there are also\\nmany dangerous accidents caused by resonance, which greatly affect the safety of railroad transportation.\\nA comprehensive examination of the operational dynamics within the power branch of a\\ntraction substation is imperative for sustaining system equilibrium. Discrepancies between these\\nfacets pose a potential threat to the safety of railway transport. Thus, a meticulous analysis of highfrequency\\nresonance characteristics and the formulation of effective suppression techniques become\\nparamount.\\n\\n\\n\\nHarmonics from grid-side locomotive traction braking are scrutinized under different\\noperational scenarios and different train runs. The aim is to develop an effective harmonic management\\nstrategy to normalize the THD and thus maintain the traction power supply system to become\\nmore stable.\\n\\n\\n\\nThis study investigates the high-frequency harmonic resonance characteristics using a\\ncontrol variable approach. Harmonics and negative sequences generated during locomotive traction\\nbraking under different operating conditions are investigated by means of extensive analysis. These\\nchallenges require the implementation of a harmonic management method. 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引用次数: 0
摘要
铁路运输在实际运行过程中,也存在很多因共振而引发的危险事故,极大地影响了铁路运输的安全。要想维持系统的平衡,就必须对牵引变电所动力分支内部的运行动态进行全面检查。对牵引变电站电力分支内部的运行动态进行全面检查是维持系统平衡的当务之急,这些方面的差异对铁路运输安全构成了潜在威胁。因此,对高频共振特性进行细致分析并制定有效的抑制技术就显得尤为重要。本研究采用控制变量方法研究了高频谐波共振特性。通过大量分析,研究了机车牵引制动时在不同运行条件下产生的谐波和负序。这些挑战要求实施一种谐波管理方法。这种方法采用两个单调滤波器和一个 C 滤波器并联的组合。这种方法适用于不同的运行条件,可以根据列车数量的变化动态调整谐波,这与牵引供电系统的实际动态密切相关。对七种运行条件的比较评估表明,本专利中的滤波器超过了现有方法的效率。滤波器降低了频谱变化时的波动,电压畸变率也从之前的 2.33% 降至 0.55%,使其适应性更强,有望在高电压和大电流条件下实现有效的谐波管理。通过多次仿真测试,在再生制动条件下,C 型滤波器和两个单谐并联的协同配置出现了。
High-frequency Resonance Suppression of Railway Traction Power Supply
System Based on the Combination of Single-tuned and C-type Filters
Railroad transportation in the actual operation process, there are also
many dangerous accidents caused by resonance, which greatly affect the safety of railroad transportation.
A comprehensive examination of the operational dynamics within the power branch of a
traction substation is imperative for sustaining system equilibrium. Discrepancies between these
facets pose a potential threat to the safety of railway transport. Thus, a meticulous analysis of highfrequency
resonance characteristics and the formulation of effective suppression techniques become
paramount.
Harmonics from grid-side locomotive traction braking are scrutinized under different
operational scenarios and different train runs. The aim is to develop an effective harmonic management
strategy to normalize the THD and thus maintain the traction power supply system to become
more stable.
This study investigates the high-frequency harmonic resonance characteristics using a
control variable approach. Harmonics and negative sequences generated during locomotive traction
braking under different operating conditions are investigated by means of extensive analysis. These
challenges require the implementation of a harmonic management method. This method uses a
combination of two monotonic filters and a C filter in parallel. This method applies to different operating
conditions and can dynamically adapt harmonics to changes in the number of trains, which
is related to the actual dynamics of the traction power system closely.
A comparative evaluation of seven operating conditions shows that the filter in this patent
exceeds the efficiency of existing methods. The filter reduces the fluctuations during spectral
changes, and the voltage distortion rate decreases from the previous 2.33% to 0.55%, making it
more adaptable and promising effective harmonic management in high voltage and high current
situations.
Through multiple simulation tests, a synergistic configuration involving the C-type
filter and two single-tuned parallel connections under regenerative braking conditions emerges.
This refined, patented filter design not only mitigates the impact of negative sequence during the
filtration process but also substantially diminishes high harmonics and THD.