[1] 周志军,李伟,温泽峰,等.采用GJ-Ⅲ型扣件地铁轨道的钢轨波磨形成机理[J].中国铁道科学, 2022, 43(3):37-49. ZHOU Z J, LI W, WEN Z F, et al. Formation mechanism of rail corrugation on metro track with GJ-Ⅲ fastener[J]. China Railway Science, 2022, 43(3):37-49.(in Chinese)
[2] 刘卫丰,张厚贵,陈嘉梁,等.北京地铁采用调频式钢轨减振器治理钢轨波磨的试验研究[J].振动工程学报, 2019, 32(4):695-700. LIU W F, ZHANG H G, CHEN J L, et al. A test of treating rail corrugation by tuned rail damper for Beijing metro[J]. Journal of Vibration Engineering, 2019, 32(4):695-700.(in Chinese)
[3] ZHANG H G, LIU W N, LIU W F, et al. Study on the cause and treatment of rail corrugation for Beijing metro[J]. Wear, 2014, 317(1-2):120-128.
[4] 吴宗臻,刘维宁,张厚贵.剪切型减振器扣件工作性能及改进[J].中南大学学报(自然科学版), 2016, 47(9):3258-3263. WU Z Z, LIU W N, ZHANG H G. Performance and improvement of shear-type damper fastener[J]. Journal of Central South University (Science and Technology), 2016, 47(9):3258-3263.(in Chinese)
[5] 佘才高,张伯林,刘铁旭,等.南京地铁1号线珠江路站振动及二次结构噪声整治研究[J].都市快轨交通, 2021, 34(4):113-118. SHE C G, ZHANG B L, LIU T X, et al. Vibration and secondary structure noise control of Zhujiang Road Station of Nanjing Metro Line 1[J]. Urban Rapid Rail Transit, 2021, 34(4):113-118.(in Chinese)
[6] 王志强,王安斌,白健,等.成都地铁轨道GJ-Ⅲ型减振扣件振动控制效果分析[J].噪声与振动控制, 2014, 34(3):190-194. WANG Z Q, WANG A B, BAI J, et al. Experimental study on track vibration control using GJ-Ⅲ rail fastening system in Chengdu metro[J]. Noise and Vibration Control, 2014, 34(3):190-194.(in Chinese)
[7] 刘卫丰,刘维宁,吴宗臻,等.北京地铁剪切型减振器扣件钢轨波磨治理的试验研究[J].机械工程学报, 2015, 51(21):73-79. LIU W F, LIU W N, WU Z Z, et al. Test study on treating rail corrugation for egg fastener in Beijing metro[J]. Journal of Mechanical Engineering, 2015, 51(21):73-79.(in Chinese)
[8] 王志强,雷震宇.科隆蛋扣件段钢轨波磨产生机理及发展特性[J].振动、测试与诊断, 2021, 41(4):688-694, 829. WANG Z Q, LEI Z Y. Formation mechanism and development properties of rail corrugation of Cologne egg fastener section[J]. Journal of Vibration, Measurement&Diagnosis, 2021, 41(4):688-694, 829.(in Chinese)
[9] LIU W F, ZHANG H G, LIU W N, et al. Experimental study of the treatment measures for rail corrugation on tracks with egg fasteners in the Beijing metro[J]. Proceedings of the Institution of Mechanical Engineers, Part F:Journal of Rail and Rapid Transit, 2018, 232(5):1360-1374.
[10] 崔晓璐,钱韦吉,张青,等.直线线路科隆蛋扣件地段钢轨波磨成因的理论研究[J].振动与冲击, 2016, 35(13):114-118, 152. CUI X L, QIAN W J, ZHANG Q, et al. Forming mechanism of rail corrugation of a straight track section supported by Cologne-egg fasteners[J]. Journal of Vibration and Shock, 2016, 35(13):114-118, 152.(in Chinese)
[11] GRASSIE S L, KALOUSEK J. Rail corrugation:Characteristics, causes and treatments[J]. Proceedings of the Institution of Mechanical Engineers, Part F:Journal of Rail and Rapid Transit, 1993, 207(1):57-68.
[12] GRASSIE S L. Rail corrugation:Characteristics, causes, and treatments[J]. Proceedings of the Institution of Mechanical Engineers, Part F:Journal of Rail and Rapid Transit, 2009, 223(6):581-596.
[13] SATO Y, MATSUMOTO A, KNOTHE K. Review on rail corrugation studies[J]. Wear, 2002, 253(1-2):130-139.
[14] OOSTERMEIJER K H. Review on short pitch rail corrugation studies[J]. Wear, 2008, 265(9-10):1231-1237.
[15] 金学松,李霞,李伟,等.铁路钢轨波浪形磨损研究进展[J].西南交通大学学报, 2016, 51(2):264-273. JIN X S, LI X, LI W, et al. Review of rail corrugation progress[J]. Journal of Southwest Jiaotong University, 2016, 51(2):264-273.(in Chinese)
[16] SUDA Y. Effects of vibration system and rolling conditions on the development of corrugations[J]. Wear, 1991, 144(1-2):227-242.
[17] CHEN G X, ZHOU Z R, OUYANG H, et al. A finite element study on rail corrugation based on saturated creep force-induced self-excited vibration of a wheelset-track system[J]. Journal of Sound and Vibration, 2010, 329(22):4643-4655.
[18] CLARK R, SCOTT G, POOLE W. Short wave corrugations:An explanation based on stick-slip vibrations[J]. Proceedings of the Symposium on the Applied Mechanics Rail Transportation, 1998, 92(2):141-148.
[19] HEMPELMANN K, KNOTHE K. An extended linear model for the prediction of short pitch corrugation[J]. Wear, 1996, 191(1-2):161-169.
[20] DANIEL W J T, HORWOOD R J, MEEHAN P A, et al. Analysis of rail corrugation in cornering[J]. Wear, 2008, 265(9-10):1183-1192.
[21] MVLLER S. A linear wheel-rail model to investigate stability and corrugation on straight track[J]. Wear, 2000, 243(1-2):122-132.
[22] GRASSIE S L, ELKINS J A. Rail corrugation on North American transit systems[J]. Vehicle System Dynamics, 1998, 29(S1):5-17.
[23] SUN Y Q, SIMSON S. Nonlinear three-dimensional wagon-track model for the investigation of rail corrugation initiation on curved track[J]. Vehicle System Dynamics, 2007, 45(2):113-132.
[24] SUN Y Q, SIMSON S. Wagon-track modelling and parametric study on rail corrugation initiation due to wheel stick-slip process on curved track[J]. Wear, 2008, 265(9-10):1193-1201.
[25] WANG Z Q, LEI Z Y. Formation mechanism of metro rail corrugation based on wheel-rail stick-slip behaviors[J]. Applied Sciences, 2021, 11(17):8128.
[26] 尧辉明,沈钢,高利君.基于试验验证的磨耗型钢轨波磨形成机理[J].同济大学学报(自然科学版), 2018, 46(10):1427-1432. YAO H M, SHEN G, GAO L J. Formation mechanism of worn profile rail corrugation based on experimental verification[J]. Journal of Tongji University (Natural Science), 2018, 46(10):1427-1432.(in Chinese)
[27] ZHAO X, WEN Z F, WANG H Y, et al. Modeling of high-speed wheel-rail rolling contact on a corrugated rail and corrugation development[J]. Journal of Zhejiang University Science A, 2014, 15(12):946-963.
[28] 赵鑫,温泽峰,王衡禹,等.三维高速轮轨瞬态滚动接触有限元模型及其应用[J].机械工程学报, 2013, 49(18):1-7. ZHAO X, WEN Z F, WANG H Y, et al. 3D transient finite element model for high-speed wheel-rail rolling contact and its application[J]. Journal of Mechanical Engineering, 2013, 49(18):1-7.(in Chinese)
[29] LI S G, LI Z L, N AU'GÑEZ A, et al. New insights into the short pitch corrugation enigma based on 3D-FE coupled dynamic vehicle-track modeling of frictional rolling contact[J]. Applied Sciences, 2017, 7(8):807.
[30] MOLODOVA M, LI Z L, N AU'GÑEZ A, et al. Validation of a finite element model for axle box acceleration at squats in the high frequency range[J]. Computers&Structures, 2014, 141:84-93.
[31] MATSUMOTO K, SUDA Y, KOMINE H, et al. A proposal of wheel/rail contact model for friction control[J]. Journal of Mechanical Science and Technology, 2005, 19(1):437-443.
[32] CREMONA M A, LIU B B, HU Y, et al. Predicting railway wheel wear under uncertainty of wear coefficient, using universal kriging[J]. Reliability Engineering&System Safety, 2016, 154:49-59.
[33] XI Y H, BJÖRLING M, ALMQVIST A. A numerical model for solving three-dimensional rolling contact problems with elastic coating layers[J]. Tribology Letters, 2021, 69(4):139.
[34] JIN X S, WEN Z F, WANG K Y, et al. Effect of a scratch on curved rail on initiation and evolution of rail corrugation[J]. Tribology International, 2004, 37(5):385-394.
[35] WEN Z F, JIN X S. Effect of track lateral geometry defects on corrugations of curved rails[J]. Wear, 2005, 259(7-12):1324-1331.
[36] JIN X S, WEN Z F, WANG K Y. Effect of track irregularities on initiation and evolution of rail corrugation[J]. Journal of Sound and Vibration, 2005, 285(1-2):121-148.
[37] WEN Z F, JIN X S, XIAO X B, et al. Effect of a scratch on curved rail on initiation and evolution of plastic deformation induced rail corrugation[J]. International Journal of Solids and Structures, 2008, 45(7-8):2077-2096.
[38] CHEN G X, ZHANG S, WU B W, et al. Field measurement and model prediction of rail corrugation[J]. Proceedings of the Institution of Mechanical Engineers, Part F:Journal of Rail and Rapid Transit, 2020, 234(4):381-392.
[39] ZHAO X, ZHANG P, WEN Z F. On the coupling of the vertical, lateral and longitudinal wheel-rail interactions at high frequencies and the resulting irregular wear[J]. Wear, 2019, 430-431:317-326.
[40] 潘兵,王安斌,高晓刚,等.轮轨耦合系统横向动态响应特性对钢轨波浪磨耗的影响[J].噪声与振动控制, 2020, 40(1):132-137. PAN B, WANG A B, GAO X G, et al. Effects of lateral dynamic response characteristics of wheel-rail coupling systems on rail corrugation[J]. Noise and Vibration Control, 2020, 40(1):132-137.(in Chinese)
[41] WANG Z Q, LEI Z Y, ZHAO Y, et al. Rail corrugation characteristics of Cologne egg fastener section in small radius curve[J]. Shock and Vibration, 2020:1827053.