A computational framework for low-cycle fatigue in polycrystalline materials

被引:12
作者
Parrinello, Francesco [1 ]
Gulizzi, Vincenzo [2 ]
Benedetti, Ivano [1 ]
机构
[1] Univ Palermo, Dept Engn, Viale Sci,Edificio 8, I-90128 Palermo, Italy
[2] Lawrence Berkeley Natl Lab, Ctr Computat Sci & Engn CCSE, MS 50A-3111, Berkeley, CA 94720 USA
关键词
Polycrystalline materials; Low-cycle fatigue; Cohesive Zone Modelling; Multiscale Materials Modelling; Boundary Element method; COHESIVE-ZONE MODEL; GRAIN-BOUNDARY FORMULATION; INTERFACE MODEL; DELAMINATION ANALYSIS; MECHANICAL FATIGUE; DAMAGE MECHANICS; CRACK-GROWTH; ELEMENT; DEGRADATION; POLYSILICON;
D O I
10.1016/j.cma.2021.113898
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A three-dimensional framework for low-cycle fatigue analysis of polycrystalline aggregates is proposed in this work. First, a cohesive law coupling plasticity and damage is developed for modelling cycle-by-cycle degradation of material interfaces up to complete de-cohesion and failure. The law may model both quasi-static degradation under increasing monotonic load and degradation under cyclic loading, through a coupled plasticity-damage model whose activation and flow rules are formulated in a thermodynamically consistent framework. The proposed interface laws have been then implemented and coupled with a multi-region boundary element formulation, with the aim of analysing low-cycle intergranular fatigue in polycrystalline aggregates. The boundary element formulation allows expressing the micro-mechanical problem in terms of grain-boundary displacements and tractions only, which are the quantities directly entering the cohesive laws, thus simplifying the coupling of the two tools. After assessing the response of an individual interface, to both quasi-static and cyclic loads, the coupled framework has been employed for the computational investigation of low-cycle degradation in fully-3D and pseudo-3D, or & nbsp;2D columnar, polycrystalline aggregates, assuming that the degradation process remains confined in the intergranular regions. The discussed results show the potential of the developed formulation for multiscale materials modelling, which may find future application in the multiscale design of engineering structures subjected to complex loads and degradation processes, and for computational micromechanics, which may find direct application in the design and analysis of micro-electromechanical systems (MEMS). (c) 2021 Elsevier B.V. All rights reserved.
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页数:33
相关论文
共 88 条
[1]   Finite element interface models for the delamination analysis of laminated composites: Mechanical and computational issues [J].
Alfano, G ;
Crisfield, MA .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2001, 50 (07) :1701-1736
[2]   Combining interface damage and friction in a cohesive-zone model [J].
Alfano, Giulio ;
Sacco, Elio .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2006, 68 (05) :542-582
[3]  
Aliabadi MH., 2002, BOUNDARY ELEMENT MET, V2
[4]   DAMAGE ANALYSIS OF INTERLAMINAR FRACTURE SPECIMENS [J].
ALLIX, O ;
LADEVEZE, P ;
CORIGLIANO, A .
COMPOSITE STRUCTURES, 1995, 31 (01) :61-74
[5]   Multiscale dynamic transition of 2D metallic materials using the boundary element method [J].
Alvarez, Juan E. ;
Galvis, Andres F. ;
Sollero, Paulo .
COMPUTATIONAL MATERIALS SCIENCE, 2018, 155 :383-392
[6]  
Anderson T.L, 2017, FRACTURE MECH FUNDAM, DOI [DOI 10.1201/9781315370293, 10.1201/9781315370293]
[7]  
[Anonymous], [No title captured]
[8]   Fatigue of polycrystalline silicon under long-term cyclic loading [J].
Bagdahn, J ;
Sharpe, WN .
SENSORS AND ACTUATORS A-PHYSICAL, 2003, 103 (1-2) :9-15
[9]  
Banerjee P.K., 1994, BOUNDARY ELEMENT MET, P177
[10]  
Bebendorf M., 2008, HIERARCHICAL MATRICE, V63