Fatigue life prediction of cord-rubber composite structures based on progressive damage analysis

被引:6
作者
Jha, Niraj Kumar [1 ]
Nackenhorst, Udo [2 ]
机构
[1] Leibniz Univ Hannover, Hannover, Hannover, Germany
[2] Leibniz Univ Hannover, Inst Baumech & Numer Mech, Hannover, Germany
关键词
PDA; Constitutive model; Plasticity; Cyclic loading; Fatigue damage;
D O I
10.1108/EC-12-2016-0450
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Purpose The purpose of this paper is to develop a progressive damage framework to predict the fatigue life of cord-reinforced rubber composite under cyclic loadings. Special attention has been paid to failure mechanisms, like cord-rubber interfacial debonding, and rubber matrix damage. Design/methodology/approach The constitutive modeling is based on the continuum damage mechanics (CDMs) and the thermodynamics of irreversible process. The damage in rubber is described by an istropic law, whereas elasto-plastic continuum model has been proposed for cord-rubber interphase layer. The numerical framework is implemented into commercial finite element code Abaqus/Standard via user subroutine (UMAT). Findings One of the most important findings obtained from reviewing various techniques is that meso-level fatigue damage modeling based on developed framework can simulate competitive damage scenarios, e.g. debonding, delamination or matrix failure. Originality/value A systematic framework for predicting failure in cord-reinforced rubber composite is formulated within the context of CDMs that can also be applied for industrial components, such as tires and airsprings.
引用
收藏
页码:2215 / 2233
页数:19
相关论文
共 50 条
[31]   Prediction of fatigue life by crack growth analysis [J].
Bahloul, A. ;
Bouraoui, C. H. ;
Boukharouba, T. .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2017, 91 (9-12) :4009-4017
[32]   Fatigue Life Prediction for a Concrete-Steel Composite Viaduct: A Process Based on Indirect Measurements [J].
Del Grosso, A. ;
Cademartori, M. ;
Basso, P. ;
Osmani, S. ;
Di Gennaro, F. ;
Federici, F. .
CIVIL STRUCTURAL HEALTH MONITORING, CSHM-8, 2021, 156 :151-157
[33]   Progressive damage analysis as a design tool for composite bonded joints [J].
Leone, Frank A. ;
Davila, Carlos G. ;
Girolamo, Donato .
COMPOSITES PART B-ENGINEERING, 2015, 77 :474-483
[34]   Micromechanics-based elastic-damage analysis of laminated composite structures [J].
Pyo, S. H. ;
Lee, H. K. .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2009, 46 (17) :3138-3149
[35]   Compression Fatigue Damage Evolution and Life Prediction of Polymer Grouting Materials [J].
Zhang C. ;
Pan W. ;
Fang H.-Y. ;
Wang C.-X. ;
Wang F.-M. .
Zhongguo Gonglu Xuebao/China Journal of Highway and Transport, 2023, 36 (10) :64-74
[36]   Development of a continuum damage model for fatigue life prediction of laminated composites [J].
Mohammadi, Bijan ;
Fazlali, Babak ;
Salimi-Majd, Davood .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2017, 93 :163-176
[37]   MMM fatigue damage evaluation and life prediction modeling for ferromagnetic materials [J].
Xing, Haiyan ;
Xu, Minqiang ;
Wang, Rixin ;
Zhang, Jiazhong .
FRACTURE AND DAMAGE MECHANICS V, PTS 1 AND 2, 2006, 324-325 :619-+
[38]   STATISTICAL ANALYSIS OF FATIGUE DAMAGE LIFE OF CORN KERNELS [J].
Wang, Bolong ;
Lin, Zhiyong ;
Gao, Mingjie ;
Zhang, Guohai ;
Geng, Duanyang ;
Shi, Zhou .
INMATEH-AGRICULTURAL ENGINEERING, 2023, 69 (01) :589-596
[39]   PHYSICS-BASED MULTISTAGE FATIGUE MODEL FOR FATIGUE DAMAGE IN NOTCHED STRUCTURES [J].
Xue, Yibin ;
Jordon, Brian ;
Horstemeyer, Mark .
TMS 2010 139TH ANNUAL MEETING & EXHIBITION - SUPPLEMENTAL PROCEEDINGS, VOL 3: GENERAL PAPER SELECTIONS, 2010, :745-+
[40]   Damage evolution and fatigue life prediction of the shape memory alloy under low cycle fatigue [J].
Liu, Bingfei ;
Chen, Keying ;
Zhou, Rui .
MATERIALS TODAY COMMUNICATIONS, 2021, 26