吉林大学学报(工学版) ›› 2026, Vol. 56 ›› Issue (9): 2292-2301.doi: 10.13229/j.cnki.jdxbgxb.20250253

• 车辆工程·机械工程 • 上一篇    

液压挖掘机履带链轨节疲劳分析

王国强1(),马超洋1,郭志远2,王帅3,左国棚2,刘世博1   

  1. 1.吉林大学 机械与航空航天工程学院,长春 130022
    2.三一集团有限公司 传动事业部,常熟 215500
    3.吉林大学 生物与农业工程学院,长春 130022
  • 收稿日期:2025-03-26 出版日期:2026-09-01 发布日期:2026-09-07
  • 作者简介:王国强(1965-),男,教授,博士. 研究方向:工程装备智能化.E-mail: wgq@jlu.edu.cn
  • 基金资助:
    国家自然科学基金项目(52302516);国家重点研发计划项目(2023YFD1500603-05);工科集群青年人才专项支持计划项目(419021423G68);2024年博士后留吉(来吉)人员资助项目(820241042418)

Fatigue analysis methods for hydraulic excavator track links

Guo-qiang WANG1(),Chao-yang MA1,Zhi-yuan GUO2,Shuai WANG3,Guo-peng ZUO2,Shi-bo LIU1   

  1. 1.School of Mechanical and Aerospace Engineering,Jilin University,Changchun 130022,China
    2.Transmission Business Department,Sany Group Co. ,Ltd. ,Changshu 215500,China
    3.School of Biological and Agricultural Engineering,Jilin University,Changchun 130022,China
  • Received:2025-03-26 Online:2026-09-01 Published:2026-09-07

摘要:

以液压挖掘机履带链轨节为研究对象,提出了完整的基于动力学-有限元-疲劳准则的链轨节疲劳寿命预测技术路线。首先,构建了液压挖掘机履带行走装置动力学模型,通过对比试验数据和动力学仿真结果,验证了动力学模型的正确;其次,将动力学模型提取的链轨节张紧力与动态接触载荷导入有限元分析软件,对链轨节网格各节点进行应力和应变数值求解;最后,针对链轨节多模式交变非对称载荷特征,基于多轴疲劳准则实现了结构寿命预测。结果表明:建立的仿真动力学模型关键参数数据与试验数据的均值误差在10%以内,预测了液压挖掘机直行和转向两种工况下的链轨节疲劳寿命,直行工况寿命超过107次循环,转向工况寿命为3.59×106次循环。

关键词: 液压挖掘机, 链轨节, 疲劳寿命, 动力学建模, 有限元

Abstract:

The hydraulic excavator track link was selected as the research object. A comprehensive methodology for predicting track link fatigue life, based on integrated dynamics-FEA-fatigue criterion analysis, was proposed. Initially, a dynamic model of the hydraulic excavator track link was constructed and validated by contrasting key parameter data obtained from experiments and simulations. Subsequently, the extracted dynamic loads,including track tension and contact forces derived from the dynamic model,were imported into finite element analysis software. Stress and strain solutions were numerically computed at all nodal points within the track link mesh. Finally, addressing the characteristic multi-mode, alternating, asymmetric loading of the track link, structural life prediction was implemented based on a multiaxial fatigue criterion. The results demonstrate that the mean error between critical parameter data from the established simulation model and experimental data was maintained within 10%. Fatigue life predictions were obtained for the track link under both straight-line travel and steering conditions of the hydraulic excavator. The predicted life exceeded 107 cycles under straight-line travel, while a life of 3.59×106 cycles was predicted for the steering condition.

Key words: hydraulic excavator, track link, fatigue life, dynamic modeling, finite element

中图分类号: 

  • TH114

图1

履带车辆平面运动模型"

图2

动力学模型建立流程图"

图3

虚拟样机模型"

表1

挖掘机主要参数"

参数名称数值
重量/kg71 000
排量/L15.681
履带板宽度/m0.6
链轨节节距/m0.228
接地长度/m4.6
轨距/m3.08
驱动轮齿数23
驱动轮分度圆半径/m0.392
支重轮每侧个数9
拖带轮每侧个数3
履带板数52
地面摩擦系数0.7

图4

传感器安装示意图"

图5

直行工况仿真数据与实测数据对比"

图6

转向工况仿真数据与实测数据对比"

表2

仿真与实测的相对误差"

工况参数仿真均值实测均值误差
直行速度(km/h)2.038 12.028 60.46%
转矩(N·m)12 50012 7842.22%
转向外侧履带速度(km/h)2.016 31.959 22.91%
内侧履带速度(km/h)1.417 11.350 54.93%
外侧履带转矩(N·m)63 63661 0794.19%
内侧履带转矩(N·m)40 05744 3189.61%

图7

链轨节相关的作用力"

图8

直行工况链轨节应力云图"

图9

转向工况链轨节应力云图"

表3

链轨节材料参数"

参数描述数值
E弹性模量/MPa210 000
μ泊松比0.3
HSS静水应力敏感性0.35
LHF极限硬化因子5
SHF应变硬化因子1
TAFEA型疲劳极限/MPa274.4
UTS极限抗拉强度/MPa980

图10

带有弯曲和扭转疲劳测试的典型校准方案"

图11

疲劳安全分析结果"

图12

链轨节材料SN曲线"

表4

不同工况下的疲劳寿命预测"

工况最小安全因子寿命
直线行驶1.225 7大于107
转向行驶0.501 43.59×106

图13

疲劳断裂位置对比图"

[1] Rubinstein D, Coppock J L. A detailed single-link track model for multi-body dynamic simulation of crawlers[J]. Journal of Terramechanics, 2007, 44(5): 355-364.
[2] Wang L, Chen X G, Li Z G, et al. Investigation of tracked mining vehicles' driving performance at varying travel speeds by experimental and numerical simulation[J]. Applied Ocean Research, 2024, 152: 104142.
[3] 叶华文, 邓加林, 冯志皓, 等. 拉-扭复合疲劳加载作用下薄壁钢圆管裂纹扩展机理[J]. 吉林大学学报: 工学版, 2022, 55(10): 3253-3261.
Ye Hua-wen, Deng Jia-lin, Feng Zhi-hao, etc. Mechanism of crack propagation in thin-walled steel circular tubes under tensile torsional fatigue loading[J]. Journal of Jilin University (Engineering and Technology Edition),2022, 55(10): 3253-3261.
[4] 孙树磊, 雷丽妃, 黄海波, 等. 基于用户作业工况的履带式挖掘机加速疲劳强化路面构建方法[J]. 机械工程学报, 2022, 58(16): 319-328.
Sun Shu-lei, Lei Li-fei, Huang Hai-bo, et al. Construction method of accelerated fatigue strengthened road surface for crawler excavators based on user operation conditions[J]. Journal of Mechanical Engineering, 2022, 58(16): 319-328.
[5] Niesłony A, Dsoki C E, Kaufmann H, et al. New method for evaluation of the manson-coffin-basquin and ramberg-osgood equations with respect to compatibility[J]. International Journal of Fatigue, 2008, 30(10): 1967-1977.
[6] Sun Q, Dui H N, Fan X L. A statistically consistent fatigue damage model based on Miner's rule[J]. International Journal of Fatigue, 2014, 69: 16-21.
[7] Susmel L, Tovo R, Lazzarin P. The mean stress effect on the high-cycle fatigue strength from a multiaxial fatigue point of view[J]. International Journal of Fatigue, 2005, 27(8): 928-943.
[8] Zhang Z, He Z W, Yang B, et al. An improved Goodman-Smith fatigue limit diagram for railway vehicle base metals and welded structures[J]. International Journal of Fatigue, 2024, 182: 108160.
[9] Chiocca A, Frendo F, Marulo G. An efficient algorithm for critical plane factors evaluation[J]. International Journal of Mechanical Sciences, 2023,242:107974.
[10] Messele A G, Mekonnen T H, Mekonone S T. Investigation on fatigue parameters in railway wheels using a critical plane model[J]. Engineering Failure Analysis, 2024, 166: 108874.
[11] Wang T H, Wang Y R, Wei D S, et al. An engineering applicable method for multiaxial fatigue under proportional and non-proportional loads based on the octahedral plane projection[J]. International Journal of Fatigue, 2024, 187: 108475.
[12] Zhang Q, Hu X, Zhang Z, et al. The mean stress and phase angle effect on multiaxial fatigue behavior of a TiAl alloy: Failure analysis and life modeling[J]. International Journal of Mechanical Sciences, 2021, 193: 106123.
[13] Dantas R, Correia J, Lesiuk G, et al. Evaluation of multiaxial high-cycle fatigue criteria under proportional loading for s355 steel[J]. Engineering Failure Analysis, 2021, 120: 105037.
[14] Lepagneul J, Tadrist L, Sprauel J M, et al. Fatigue lifespan of a planetary roller-screw mechanism[J]. Mechanism and Machine Theory, 2022, 172: 104769.
[15] Bossy E, Noyel J P, Kleber X, et al. Competition between surface and subsurface rolling contact fatigue failures of nitrided parts: A Dang Van approach[J]. Tribology International, 2019, 140: 105888.
[16] Causse B, Bernot R, Poyet N, et al. Multiaxial fatigue on cableway installations components: use of the Dang Van criterion based on detail categories of EN 1993-1-9 standard[J]. Procedia Structural Integrity, 2024, 57: 540-549.
[17] El-daher C C, Kebir H, Bouvier S, et al. Prediction of fatigue damage and spalling in a multilayered journal bearing shell[J]. Tribology International, 2022, 175: 107850.
[18] 周琳. 履带车辆路径规划与轨迹跟踪控制方法研究[D]. 长春:吉林大学机械与航空航天工程学院, 2020.
Zhou Lin. Research on path planning and trajectory tracking control methods for tracked vehicles[D]. Changchun: College of Mechanical and Aerospace Engineering, Jilin University, 2020.
[19] Zhao H Y, Wang G Q, Wang H T, et al. Fatigue life analysis of crawler chain link of excavator[J]. Engineering Failure Analysis, 2017, 79: 737-748.
[20] Desimone H, Bernasconi A, Beretta S. On the application of Dang Van criterion to rolling contact fatigue [J]. Wear, 2006, 260(4): 567-572.
[21] Kohout J, Veˇchet S. A new function for fatigue curves characterization and its multiple merits[J]. International Journal of Fatigue, 2001, 23(2): 175-183.
[1] 鲁亮,颜浩天. 基于耐震时程法的耗能自复位铰节点RC框架抗震性能[J]. 吉林大学学报(工学版), 2026, 56(3): 700-710.
[2] 李义,刘轶,姚卫国. 汽车内饰件胶接过程中产品质量的提升[J]. 吉林大学学报(工学版), 2025, 55(9): 2926-2934.
[3] 于征磊,张超磊,陈立新,胡平,徐涛,郭滨恺. 高速公路声屏障板仿生结构设计及声学力学性能[J]. 吉林大学学报(工学版), 2025, 55(9): 3079-3088.
[4] 李欢,刘千喜,张长鑫,张健. 大功率超声波焊接纯铜的动态摩擦及超声软化过程[J]. 吉林大学学报(工学版), 2025, 55(8): 2548-2554.
[5] 范亮,曾文,文强,赵富裕,徐英铭. 集束群钉装配式钢-混组合梁桥自振特性与车桥耦合分析[J]. 吉林大学学报(工学版), 2025, 55(7): 2354-2364.
[6] 姜歌东,王昊,荆亚彬. 接触热阻对高速滚珠丝杠副温升特性的影响[J]. 吉林大学学报(工学版), 2025, 55(6): 1915-1922.
[7] 王旭. 四足机器人运动及稳定控制关键技术综述[J]. 吉林大学学报(工学版), 2025, 55(5): 1483-1496.
[8] 宋剑锋,黄鑫磊,王思然,谢光耀,董永刚. C80列车长大下坡周期制动踏面疲劳寿命预测[J]. 吉林大学学报(工学版), 2025, 55(3): 866-876.
[9] 卢荡,王晓凡,吴海东. TWEEL轮胎接地压力均布特性分析[J]. 吉林大学学报(工学版), 2025, 55(3): 811-819.
[10] 马天忠,杨嘉俊,王正振,陈璋佳,郭保文. 浸水状态下黄土地区长短桩基础承载特性试验[J]. 吉林大学学报(工学版), 2025, 55(12): 3942-3954.
[11] 杨继轩,张贵辉,陈志勇,史文库,刘健,苑仁飞,赵燕燕. 减小驱动桥啸叫噪声的锥轴承游隙设计[J]. 吉林大学学报(工学版), 2025, 55(10): 3141-3150.
[12] 刘化民,杨舒涵,李义,梁策,韩奇钢. 推力杆球铰仿生表面改进及有限元分析[J]. 吉林大学学报(工学版), 2024, 54(9): 2733-2740.
[13] 梁策,李敏,李义,梁继才,韩奇钢. 轿车前轴摇臂衬套仿生柔性接触表面摩擦特性数值模拟[J]. 吉林大学学报(工学版), 2024, 54(8): 2181-2186.
[14] 郑建校,王文博,刘金颂,周立明,李宇. 基于渐近均匀化的力-电-湿耦合光滑有限元法[J]. 吉林大学学报(工学版), 2024, 54(7): 1876-1886.
[15] 邸振勇,张勇. 多高层建筑梁柱刚性连接耐震型节点承载力计算方法[J]. 吉林大学学报(工学版), 2024, 54(4): 1058-1064.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!