Page 133 - 《摩擦学学报》2021年第5期
P. 133

722                                     摩   擦   学   学   报                                 第 41 卷

                 Chinese) [宋道柱. 酸性溶液中矿用钢丝拉扭复合微动疲劳裂纹扩               cycle  in  coal  mine[J].  Engineering  Failure  Analysis,  2014,  36:
                 展演化和电化学腐蚀行为研究[D]. 徐州: 中国矿业大学, 2019].              407–422. doi: 10.1016/j.engfailanal.2013.11.006.
            [16]  Jia  Ruzhao,  Wang  Chunjiang.  Analysis  on  fretting  fatigue  [24]  Cruzado A, Urchegui M A, Gómez X. Finite element modeling and
                 characteristics  of  steel  strand  cable  based  on  SWT  method[J].  experimental validation of fretting wear scars in thin steel wires[J].
                 Chinese Quarterly of Mechanics, 2020, 41(4): 657–665 (in Chinese)  Wear, 2012, 289: 26–38. doi: 10.1016/j.wear.2012.04.018.
                 [贾如钊, 王春江. 基于SWT方法的钢绞线索微动疲劳特性分析               [25]  Zhang Y B, Lu L T, Zou L, et al. Finite element simulation of the
                 [J]. 力学季刊, 2020, 41(4): 657–665]. doi: 10.15959/j.cnki.0254-0053.  influence of fretting wear on fretting crack initiation in press-fitted
                 2020.04.006.                                      shaft under rotating bending[J]. Wear, 2018, 400-401: 177–183. doi:
            [17]  Cruzado  A,  Leen  S  B,  Urchegui  M  A,  et  al.  Finite  element
                                                                   10.1016/j.wear.2018.01.008.
                 simulation  of  fretting  wear  and  fatigue  in  thin  steel  wires[J].
                                                               [26]  Wang Dagang, Zhang Dekun, Ge Shirong. Finite element analysis of
                 International  Journal  of  Fatigue,  2013,  55:  7–21.  doi:  10.1016/
                                                                   fretting  fatigue  behavior  of  steel  wires  and  crack  initiation
                 j.ijfatigue.2013.04.025.
                                                                   characteristics[J].  Engineering  Failure  Analysis,  2013,  28:  47–62.
            [18]  Cruzado A, Urchegui M A, Gómez X. Finite element modeling of
                                                                   doi: 10.1016/j.engfailanal.2012.09.007.
                 fretting  wear  scars  in  the  thin  steel  wires:  Application  in  crossed
                                                               [27]  Cruzado A, Hartelt M, Wäsche R, et al. Fretting wear of thin steel
                 cylinder  arrangements[J].  Wear,  2014,  318(1-2):  98–105.  doi:
                                                                   wires. Part 1: Influence of contact pressure[J]. Wear, 2010, 268(11-
                 10.1016/j.wear.2014.06.019.
                                                                   12): 1409–1416. doi: 10.1016/j.wear.2010.02.017.
            [19]  Chen Yuanpei, Meng Fanming. Numerical study on wear evolution
                                                               [28]  Zhang Jun, Ge Shirong, Wang Dagang, et al. Prediction of the safety
                 and  mechanical  behavior  of  steel  wires  based  on  semi-analytical
                                                                   factor  of  mine  hoisting  rope  based  on  fretting  wear[J].  Journal  of
                 method[J]. International Journal of Mechanical Sciences, 2018, 148:
                                                                   Mechanical Engineering, 2019, 55(7): 110–118 (in Chinese) [张俊,
                 684–697. doi: 10.1016/j.ijmecsci.2018.09.030.
                                                                   葛世荣, 王大刚, 等. 基于微动磨损预测矿井提升钢丝绳安全系数
            [20]  Wang  Dagang.  Study  on  fretting  damage  behaviors  and  fretting
                                                                   [J]. 机械工程学报, 2019, 55(7): 110–118]. doi: 10.3901/JME.2019.07.
                 fatigue life estimation of steel wires[D]. Xuzhou: China University
                                                                   110.
                 of Mining and Technology, 2012 (in Chinese) [王大刚. 钢丝的微动
                                                               [29]  Wang  Dagang,  Zhang  Dekun,  Zhao  Weijian,  et  al.  Quantitative
                 损伤行为及其微动疲劳寿命预测研究[D]. 徐州: 中国矿业大学,
                                                                   analyses of fretting fatigue damages of mine rope wires in different
                 2012].
                                                                   corrosive  media[J].  Materials  Science  and  Engineering:A,  2014,
            [21]  Wang  Dagang,  Zhang  Dekun.  Mechanical  modeling  and  fretting
                                                                   596: 80–88. doi: 10.1016/j.msea.2013.12.047.
                 fatigue  damage  behavior  of  hoisting  rope[M].  Changsha:  Central
                 South University Press, 2015 (in Chinese) [王大刚, 张德坤. 提升钢  [30]  Hans A R, Manuela S. Fatigue Crack Growth [M]. Berlin: Springer-
                 丝绳的力学建模与微动疲劳损伤行为[M]. 长沙: 中南大学出版                   Verlag Berlin Heidelberg, 2016.
                 社, 2015].                                     [31]  Volume A: Theory and User Information [M]. Los Angeles: MSC
            [22]  Wang Dagang, Zhang Dekun, Zhang Zefeng, et al. Effect of various  Software Corporation, 2017.
                 kinematic  parameters  of  mine  hoist  on  fretting  parameters  of  [32]  Wang Dagang, Zhang Jun, Zhu Huilong, et al. Comparative research
                 hoisting  rope  and  a  new  fretting  fatigue  test  apparatus  of  steel  on  failure  mechanisms  of  steel  wire  ropes  during  bending  fatigue
                 wires[J].  Engineering  Failure  Analysis,  2012,  22:  92–112.  doi:  under  constant  and  variable  loads[J].  Tribology,  2020,  40(6):
                 10.1016/j.engfailanal.2012.01.008.                762–773 (in Chinese) [王大刚, 张俊, 朱辉龙, 等. 定、变载弯曲疲
            [23]  Wang Dagang, Zhang Dekun, Ge Shirong. Effect of terminal mass  劳 钢 丝 绳 失 效 机 理 对 比 研 究 [J].  摩 擦 学 学 报 ,  2020,  40(6):
                 on fretting and fatigue parameters of a hoisting rope during a lifting  762–773]. doi: 10.16078/j.tribology.2020085.
   128   129   130   131   132   133   134   135   136   137   138