Low-cycle fatigue analysis based on linear hardening structural strain method

被引:0
|
作者
Qiu G. [1 ,3 ]
Shi S. [1 ]
Liang G. [2 ]
Li X. [3 ]
Pei X. [4 ]
机构
[1] College of Locomotive and Rolling Stock Engineering, Dalian Jiaotong University, Dalian
[2] CSR Guangdong Rolling Stock Co. Ltd., Jiangmen
[3] CRRC Qiqihar Rolling Stock Co. Ltd., Qiqihar
[4] School of Mechanical Engineering, Southeast University, Nanjing
关键词
linear strain-hardening constitutive; low cycle fatigue; main strain-life curve; structural strain; welded joint;
D O I
10.19713/j.cnki.43-1423/u.T20230454
中图分类号
学科分类号
摘要
Low-cycle fatigue analysis of welded structures is particularly important for rail vehicles. To effectively evaluate the low-cycle fatigue of welded structures, a numerical calculation method for structural strain based on a linear hardening constitutive model was proposed. This method is based on classical plate-shell theory and elastoplastic mechanics. By considering the strain hardening behavior of materials, the true stressstrain relationship of materials was simplified into a linear hardening constitutive model. The structural stress at the welding toe position of the welded structure was calculated using finite element analysis software ABAQUS and Fe-safe. The linear hardening constitutive model with plasticity correction was presented based on the radial mapping algorithm. The structural stress was plastically corrected using a structural strain numerical calculation program written in MATLAB, and the structural strain was calculated. Based on this structural strain, the calculation formula of the equivalent structural strain range considering the plate thickness effects and load mode was provided, and low-cycle fatigue data were analyzed using the main strain-life curve. The finite element models of three welded joints made of Q450 high-strength weather-resistant steel material widely used in rail vehicles were established. The fatigue data obtained from tests were analyzed using both the main stress-life curve of the structural stress method and the main strain-life curve of the numerical calculation method for structural strain. The equivalent structural strain ranges calculated by the two methods were compared. The results show that the test data for each welded joint are distributed within a linear narrow band of the main strainlife curve, which verifies the feasibility of the numerical calculation method for structural strain. Compared to the structural stress method, the numerical calculation method for structural strain can better reflect the strain hardening phenomenon during low-cycle fatigue and be more suitable for evaluating the low-cycle fatigue of welded structures. This method has research value for the low-cycle fatigue evaluation of welded plate structures in rail vehicles. Compared to the traditional method of calculating structural stress and structural strain parameters by extracting node forces, the numerical calculation program for structural strain written by MATLAB greatly improves the efficiency of calculating structural strain parameters. © 2024, Central South University Press. All rights reserved.
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页码:759 / 768
页数:9
相关论文
共 17 条
  • [1] XIANG Ze, ZHU Zhiwen, Fatigue behavior of closed rib-to-floor beam joint in steel-UHPC composite bridge decks, Journal of Railway Science and Engineering, 18, 7, pp. 1798-1807, (2021)
  • [2] DONG Pingsha, A structural stress definition and numerical implementation for fatigue analysis of welded joints, International Journal of Fatigue, 23, 10, pp. 865-876, (2001)
  • [3] DONG Pingsha, HONG J K, DE JESUS A M P., Analysis of recent fatigue data using the structural stress procedure in ASME div 2 rewrite, Journal of Pressure Vessel Technology, 129, 3, pp. 355-362, (2007)
  • [4] CAO Leilei, WANG Liutao, WANG Yan, Et al., Fatigue life evaluation of excavator working device based on equivalent structural stress method, Journal of South China University of Technology (Natural Science Edition), 50, 8, pp. 62-70, (2022)
  • [5] SHEN Zheng, FANG Ji, TANG Liming, Et al., Vibration fatigue analysis of traction motor structure based on frequency domain structural stress method, Journal of Railway Science and Engineering, 19, 3, pp. 814-821, (2022)
  • [6] WANG Xin, YUE Zengke, CAI Fuhai, Et al., Research on multi-axial fatigue life of crane weld based on structural stress method, Journal of Mechanical Strength, 44, 5, pp. 1226-1231, (2022)
  • [7] DONG Pingsha, PEI Xianjun, XING Shizhu, Et al., A structural strain method for low-cycle fatigue evaluation of welded components, International Journal of Pressure Vessels and Piping, 119, pp. 39-51, (2014)
  • [8] GAO Yidi, DONG Pingsha, YU Yang, Et al., Investigation of structural strain method in low-cycle fatigue for weldments, Shipbuilding of China, 60, 3, pp. 92-104, (2019)
  • [9] PEI Xianjun, DONG Pingsha, An analytically formulated structural strain method for fatigue evaluation of welded components incorporating nonlinear hardening effects, Fatigue & Fracture of Engineering Materials & Structures, 42, 1, pp. 239-255, (2019)
  • [10] PEI Xianjun, DONG Pingsha, XING Shizhu, A structural strain parameter for a unified treatment of fatigue behaviors of welded components, International Journal of Fatigue, 124, pp. 444-460, (2019)