[1] 翟婉明. 车辆-轨道耦合动力学[M]. 3版. 北京:科学出版社, 2007. ZHAI Wanming. Vehicle-track coupling dynamics[M]. 3rd ed. Beijing:Science Publish House, 2007. [2] REN Zunsong, SUN Shouguang, ZHAI Wanming. Study on lateral dynamic characteristics of vehicle-turnout system[J]. Vehicle System Dynamics, 2005, 43(4):285-303. [3] YE Yunguang, SUN Yu, DONGFANG Shiping, et al. Optimizing wheel profiles and suspensions for railway vehicles operating on specific lines to reduce wheel wear:A case study[J]. Multibody System Dynamics, 2020, 51(1):91-122. [4] ZENG Yuanchen, SONG Dongli, ZHANG Weihua, et al. Stochastic failure process of railway vehicle dampers and the effects on suspension and vehicle dynamics[J]. Vehicle System Dynamics. 2020, 59(5):1-16. [5] DUMITRIU M, LEU M. Study regarding the dynamic loads upon the track at failure of the dampers in the primary suspension of the railway vehicle[C]//ModTech Profess Assoc. Modtech International Conference-Modern Technologies in Industrial Engineering VI (MODTECH 2018). Romania:IOP Conference Series:Materials Science and Engineering, 2018:400. [6] LUO Ren, TENG Wanxiu, WU Xingwen, et al. Dynamics simulation of a high-speed railway car operating in low-temperature environments with stochastic parameters[J]. Vehicle System Dynamics, 2019, 58(12):1914-1934. [7] WANG Wenlin, LIANG Yuwen, ZHANG Weihua, et al. Effect of the nonlinear displacement-dependent characteristics of a hydraulic damper on high-speed rail pantograph dynamics[J]. Nonlinear Dynamics, 2019, 95(4):3439-3464. [8] GAO Hongxing, CHI Maoru, DAI Liangcheng, et al. Mathematical modelling and computational simulation of the hydraulic damper during the orifice-working stage for railway vehicles[J]. Mathematical Problems in Engineering, 2020(11):1-23. [9] 张海. 高速铁道车辆非线性稳定性的关键因素研究[D]. 北京:中国铁道科学研究院, 2014. ZHANG Hai. Research on key factors of non-linear stability of high speed railway vehicle[D]. Beijing:China Academy of Railway Science, 2014. [10] XIA Zhanghui, ZHOU Jinsong, GONG Dao, et al. Theoretical study on the effect of the anti-yaw damper for rail vehicles[J]. Proceedings of The Institution of Mechanical Engineers Part C:Journal of Mechanical Engineering Science, 2020, 234(2):457-473. [11] TENG Wanxiu, SHI Huailong, LUO Ren, et al. Improved nonlinear model of a yaw damper for simulating the dynamics of a high-speed train[J]. Proceedings of The Institution of Mechanical Engineers Part F:Journal of Rail and Rapid Transit, 2019, 233(7):651-665. [12] 侯卫星, 王卫东, 曾宇清. 高精度高速连续测量轮轨动态作用力的研究[J]. 铁道学报, 2010, 32(1):24-29. HOU Weixing, WANG Weidong, ZENG Yuqing. Research on high precision, high-speed and continuously measured dynamic wheel-rail forces[J]. Journal of the China Railway Society, 2010, 32(1):24-29. [13] 任尊松, 宋丹丹, 金新灿, 等. 高速动车组轮轨载荷及分布特征[J]. 科学通报, 2019, 64(25):2600-2607. REN Zunsong, SONG Dandan, JIN Xincan, et al. Wheel/rail loads distribution characteristics of high speed EMU[J]. Chinese Science Bulletin, 2019, 64(25):2600-2607. [14] YU Mengge, LIU Jiali, LIU Dawei, et al. Investigation of aerodynamic effects on the high-speed train exposed to longitudinal and lateral wind velocities[J]. Journal of Fluids and Structures, 2016, 61:347-361. [15] ZENG Xiaohui, LAI Jiang, WU Han. Hunting stability of high-speed railway vehicles under steady aerodynamic loads[J]. International Journal of Structural Stability and Dynamics, 2018, 18(7):889-900. [16] 任尊松, 曹杰, 李玉怡, 等. 高速动车组构架载荷特征研究[J]. 工程力学, 2020, 37(12):1-15. REN Zunsong, CAO Jie, LI Yuyi, et al. The load characteristics of the bogieframe of high-speed EMUs[J]. Engineering Mechanics, 2020, 37(12):1-15. |