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768 摩擦学学报(中英文) 第 45 卷
squats —correlation analysis and numerical modeling[J]. Wear, [14] Xie Xuhui, Yu Qingyuan, Li Wei, et al. Wear property of U71MnK
2008, 265(9-10): 1349–1355. doi: 10.1016/j.wear.2008.02.037. rail weld under rolling contact[J]. Tribology, 2015, 35(3): 315–321
[ 5 ] Wang Yanpeng, Ding Haohoa, Zou Qiang, et al. Research progress (in Chinese) [谢旭辉, 于卿源, 李炜, 等. U71MnK钢轨焊缝滚动接
on rolling contact fatigue of railway wheel treads[J]. Surface 触磨损性能研究[J]. 摩擦学学报, 2015, 35(3): 315–321]. doi: 10.
Technology, 2020, 49(05): 120–128 (in Chinese) [王延朋, 丁昊昊, 16078/j.tribology.2015.03.011.
邹强, 等. 列车车轮踏面滚动接触疲劳研究进展[J]. 表面技术, [15] Jiang Wenjuan, Xiang Pengcheng, Ding Haohao, et al. Research on
2020, 49(05): 120–128]. doi: 10.16490/j.cnki.issn.1001-3660.2020. rolling wear and damage properties of gas pressure welding joint of
05.015. U71Mn rail[J]. Tribology, 2020, 40(5): 579–585 (in Chinese) [蒋文
[ 6 ] Shi Haochuan. The effect of laser surface strengthening on wear and 娟, 向鹏程, 丁昊昊, 等. U71Mn钢轨气压焊焊接接头滚动磨损与
damage properties of rail welding joints[D]. Chengdu: Southwest 损伤性能研究[J]. 摩擦学学报, 2020, 40(5): 579–585]. doi: 10.
Jiaotong University, 2019 (in Chinese) [施浩川. 激光表面强化对钢 16078/j.tribology.2020014.
轨焊接接头磨损与损伤性能影响[D]. 成都: 西南交通大学, 2019]. [16] Xiang Pengcheng, Jiang Wenjuan, Ding Haohao, et al. Investigation
[ 7 ] Feng Yaming, He Bolin. Influence factors of railway vehicle on impact wear and damage properties of rail welded joints after two
wheel/rail contact fatigue[J]. Surface Technology, 2016, 45(11): types of heat-treatments[J]. Tribology, 2021, 41(3): 382–392 (in
48–54 (in Chinese) [封亚明, 何柏林. 铁道车辆轮轨接触疲劳的影 Chinese) [向鹏程, 蒋文娟, 丁昊昊, 等. 两种热处理钢轨焊接接头
响因素[J]. 表面技术, 2016, 45(11): 48–54]. doi: 10.16490/j.cnki. 冲击磨损与损伤性能研究[J]. 摩擦学学报, 2021, 41(3): 382–392].
issn.1001-3660.2016.11.007. doi: 10.16078/j.tribology.2020142.
[ 8 ] Ding Wei, Li Li, Li Jinhua, et al. Wear characteristics and [17] Shi H C, Shi L B, Ding H H, et al. Influence of laser strengthening
countermeasures of rail welded joint for heavy haul railway[J]. techniques on anti-wear and anti-fatigue properties of rail welding
Railway Engineering, 2012, (11): 119–123 (in Chinese) [丁韦, 李力, joint[J]. Engineering Failure Analysis, 2019, 101: 72–85. doi: 10.
李金华, 等. 重载铁路钢轨焊接接头磨耗特征研究[J]. 铁道建筑, 1016/j.engfailanal.2019.03.012.
2012, (11): 119–123]. doi: 10.3969/j.issn.1003-1995.2012.11.38. [18] Cao X, Shi L B, Cai Z B, et al. Investigation on the microstructure
[ 9 ] Lu Xin, Li Dadong, Wang Ruoyu, et al. Fracture cause analysis of and damage characteristics of wheel and rail materials subject to
flash-butt welded joints of high strength heat treatment rail[J]. laser dispersed quenching[J]. Applied Surface Science, 2018, 450:
Railway Engineering, 2020, 60(01): 116–119 (in Chinese) [陆鑫, 李 468–483. doi: 10.1016/j.apsusc.2018.04.210.
大东, 王若愚, 等. 高强度热处理钢轨闪光焊接头断裂原因分 [19] Hu Yue. Study on wear and damage behaviours and optimal
析[J]. 铁道建筑, 2020, 60(01): 116–119]. doi: 10.3969/j.issn.1003- selection of wheel and rail under various material/hardness matching
1995.2020.01.27. conditions[D]. Chengdu: Southwest Jiaotong University, 2021 (in
[10] Xu Xin, Luo Guowei, Yang Qiquan, et al. Analysis and discussion Chinese) [胡月. 不同材料/硬度匹配条件下轮轨磨损与损伤行为
on fracture cases of rail welded joint in China[J]. Advanced 及优化选用研究[D]. 成都: 西南交通大学, 2021].
Materials of High Speed Railway, 2022, 1(6): 77–84 (in Chinese) [许 [20] Li Shengjie, Li Jiaxin, Wu Bingnan, et al. Influence of lubricating
鑫, 罗国伟, 杨其全, 等. 我国铁路钢轨焊接接头折断案例的分析 materials on wheel-rail wear and rolling contact fatigue[J].
与讨论[J]. 高速铁路新材料, 2022, 1(6): 77–84]. doi: 10.3969/j. Tribology, 2022, 42(5): 935–944 (in Chinese) [李胜杰, 李佳辛, 吴
issn.2097-0846.2022.06.015. 柄男, 等. 不同润滑材料对轮轨磨损与滚动接触疲劳的影响[J]. 摩
[11] Zhong Hao. Study on rail welded joint irregularity based on flash 擦 学 学 报 , 2022, 42(5): 935–944]. doi: 10.16078/j.tribology.
welding and Thermit welding[J]. Mechanical Engineering & 2021118.
Automation, 2022, (3): 143–145 (in Chinese) [钟浩. 基于闪光焊和 [21] Rana R, Bleck W, Singh S B, et al. Development of high strength
铝热焊的钢轨焊接接头不平顺研究[J]. 机械工程与自动化, 2022, interstitial free steel by copper precipitation hardening[J]. Materials
(3): 143–145]. doi: 10.3969/j.issn.1672-6413.2022.03.053. Letters, 2007, 61(14–15): 2919–2922. doi: 10.1016/j.matlet.2006.10.
[12] Zhang Xinchao, Peng Fei, Zhang Honghui. Study on fatigue crack 037.
growth characteristics of welded rail based on DIC technology[J]. [22] Li Jinhua, Li Li, Ding Wei, et al. Damage analysis of gas pressure
Electric Welding Machine, 2023, 53(1): 44–48,62 (in Chinese) [张 welding rail joints of heavy haul railway and its prevention
欣超, 彭飞, 张洪辉. 基于DIC的焊接钢轨疲劳裂纹扩展特性研 countermeasures[J]. Railway Engineering, 2016, 56(11): 124–128 (in
究 [J]. 电 焊 机 , 2023, 53(1): 44–48,62]. doi: 10.7512/j.issn.1001- Chinese) [李金华, 李力, 丁韦, 等. 重载线钢轨气压焊接头伤损分
2303.2023.01.07. 析与预防对策[J]. 铁道建筑, 2016, 56(11): 124–128]. doi: 10.3969/
[13] Peng Jinfang, Xie Xuhui, Song Weijun, et al. Wear properties of two j.issn.1003-1995.2016.11.33.
U71Mn K and U71Mn G rail steel welds during rolling contact [23] Hu X H, Van Houtte P, Liebeherr M, et al. Modeling work
fatigue[J]. International Journal of Modern Physics B, 2019, hardening of pearlitic steels by phenomenological and Taylor-type
33(1–3): 1940041. doi: 10.1142/s0217979219400411. micromechanical models[J]. Acta Materialia, 2006, 54(4):