Abstract:In the pantograph current collection system, the major parameters, such as wear loss rate, current-carrying efficiency and stability, reflect the quality of the pantograph-catenary system. There is a close relationship between those parameters and the normal load between the pantograph slide and the contact wire. Appropriate normal load minimizes the wear rate and maintains high performance of current-carrying efficiency and stability. The variation law of wear loss, current-carrying efficiency and stability of current-carrying is obtained under various operating conditions through Cu-base powder metallurgy strip rubbing against the Cu-Sn wire. Then the support vector machine(SVM) is used to establish the regress model with the dependent variables of wear loss rate, current-carrying efficiency and stability, normal load, velocity and current as the independent variables. The optimal normal load and Pareto optimal solutions under the condition of the specific velocity and current are acquired through differential evolution-estimation of distribution algorithm(DE-EDA).
时光,陈忠华,郭凤仪. 强电流滑动电接触下最佳法向载荷[J]. 电工技术学报, 2014, 29(1): 23-30.
Shi Guang,Chen Zhonghua,Guo Fengyi. Optimal Normal Load of Sliding Electrical Contacts Under High Current. Transactions of China Electrotechnical Society, 2014, 29(1): 23-30.
[1] Tu C J, Chen Z H, Chen D, et al. Tribological behavior and wear mechanism of resin-matrix contact strip against copper with electrical current[J]. Trans. Nonferrous Met. Soc. China, 2008, 18(5): 1157-1163.
[2] Takaoka M, Aso T, Sawa K. A commutation performance and wear of carbon-?ber brush in gasoline[C]. IEEE Holm Conference(47th), 2001: 44-49. [3] Jensen M V R S. Long-term high resolution wear studies of high current density electrical brushes[C]. IEEE Holm Conference(51st), 2005: 304-311. [4] Argibay N, Bares J A, Sawyer W G. Asymmetric wear behavior of self-mated copper ?ber brush and slip-ring sliding electrical contacts in a humid carbon dioxide environment[J]. Wear, 2010, 268: 455-463. [5] 于涤. 高速接触网受流的理论分析[J]. 铁道学报, 1998, 20(5): 58-64. Yu Di. Analysis on catenary current-carrying theory of high-speed railway[J]. J. Chin. Railway Soc., 1998, 20(5): 58-64.
[6] Senouci A, Frene J, Zaidi H. Wear mechanism in graphite-copper electrical sliding contact[J]. Wear, 1999, 225-229: 949-953. [7] Kubo S, Kato K. Effect of arc discharge on the wear rate and wear mode transition of a copper- impregnated metallized carbon contact strip sliding against a copper disk[J]. Tribology International, 1999, 32(7): 367-378. [8] Bouchoucha A, Chekroud S, Paulmier D. Influence of the electrical sliding speed on friction and wear processes in an electrical contact copper-stainless steel[J]. Applied Surface Science, 2004, 223: 330-342. [9] Ding T, Chen G X, Wang X, et al. Friction and wear behavior of pure carbon strip sliding against copper contact wire under AC passage at high speeds[J]. Tribology International, 2011, 44: 437-444. [10] Azevedo C R F, Sinatora A. Failure analysis of a railway copper contact strip[J]. Engineering Failure Analysis, 2004, 11(6): 829-841. [11] Jia S G, Liu P, Ren F Z, et al. Sliding wear behaviour of copper alloy contact wire against copper-based strip for high-speed electrified railways[J]. Wear, 2007, 262: 772-777. [12] Bucca G, Collina A. A procedure for the wear prediction of collector strip and contact wire in pantograph-catenary system[J]. Wear, 2009, 266: 46-59. [13] 郭凤仪, 姜国强, 赵汝彬, 等. 基于相对稳定系数的滑动电接触特性[J]. 中国电机工程学报, 2009, 29(36): 113-119. Guo Fengyi, Jiang Guoqiang, Zhao Rubin, et al. Sliding electrical contact characteristics based on relative stability coefficients[J]. Proceedings of the CSEE, 2009, 29(36): 113-119. [14] Klapas D, Hackam R. Wear in a simulated power collection system for railways[J]. Electric Contacts Colloquium Digest, 1979, 13: 81-83. [15] Csapo E, Zaidi H, Paulmier D. Friction behaviour of a graphite-graphite dynamic electric contact in the presence of argon[J]. Wear, 1996, 192: 151-156. [16] Kubo S, Kato K. Effect of arc discharge on wear rate of Cu-impregnated carbon contact strip in unlubricated sliding against Cu trolley under electric current[J]. Wear, 1998, 216: 172-178. [17] Ding T, Chen G X, Zhu M H, et al. Influence of the spring stiffness on friction and wear behaviours of stainless steel/copper-impregnated metallized carbon couple with electrical current[J]. Wear, 2009, 267: 1080-1086. [18] Zhao H, Barber G C, Liu J. Friction and wear in high speed sliding with and without electrical current[J]. Wear, 2001, 249: 409-414. [19] Wang Y A, Li J X, Yan Y, et al. Effect of electrical current on tribological behavior of copper- impregnated metallized carbon against a Cu-Cr-Zr alloy[J]. Tribology International, 2012, 50: 26-34. [20] Dinesh G, Jeffrey L. Behavior of Copper-Aluminum tribological pair under high current densities[J]. IEEE Transactions on Magnetics, 2009, 45(1): 244-249. [21] 郭凤仪, 马同立, 陈忠华, 等. 不同载流条件下滑动电接触特性[J]. 电工技术学报, 2009, 24(12): 18-23. Guo Fengyi, Ma Tongli, Chen Zhonghua, et al. Characteristics of the sliding electric contact under different currents[J]. Transactions of China Electrote- chnical Society, 2009, 24(12): 18-23. [22] 董霖, 陈光雄, 朱旻昊, 等. 地铁钢铝复合式第三轨/受电靴载流摩擦磨损特性研究[J]. 摩擦学学报, 2007, 27(3): 274-278. Dong Lin, Chen Guangxiong, Zhu Minhao, et al. Tribological characteristics between third rail and collector shoe under electric current[J]. Tribology, 2007, 27(3): 274-278. [23] 吴积钦, 钱清泉. 受电弓与接触网系统电接触特性[J]. 中国铁道科学, 2008, 29(3): 106-109. Wu Jinqin, Qian Qingquan. Characteristics of the electrical contact between pantograph and overhead contact line[J]. China Railway Science, 2008, 29(3): 106-109. [24] Braunovic M, Konchits V, Myshkin N. Electrical contacts fundamentals, applications and technology [M]. Boca Raton: CRC Press, 2006. [25] Ray S, Chowdhury S K R. Prediction of contact temperature rise between rough sliding bodies: an artificial neural network approach[J]. Wear, 2009, 266: 1029-1038. [26] Duan K, Keerthi S S, Poo A N. Evaluation of simple performance measures for tuning SVM hyperpara- meters[J]. Neurocomputing, 2003, 51: 41-59.