A phase-field approach for crack modelling of elastomers

被引:1
作者
Brighenti, Roberto [1 ]
Carpinteri, Andrea [1 ]
Cosma, Mattia Pancrazio [1 ]
机构
[1] Univ Parma, Dept Engn & Architecture, Parco Area Sci 181-A, I-43124 Parma, Italy
来源
25TH INTERNATIONAL CONFERENCE ON FRACTURE AND STRUCTURAL INTEGRITY | 2019年 / 18卷
关键词
Elastomers; Fracture; Phase Field; Chains Distribution Function; BRITTLE-FRACTURE; ELASTICITY;
D O I
10.1016/j.prostr.2019.08.217
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The description of a problem related to an evolving interface or a strong discontinuity requires to solve partial differential equations on a moving domain, whose evolution is unknown. Standard computational methods tackle this class of problems by adapting the discretized domain to the evolving interface, and that creates severe difficulties especially when the interface undergoes topological changes. The problem becomes even more awkward when the involved domain changes such as in mechanical problems characterized by large deformations. In this context, the phase-field approach allows us to easily reformulate the problem through the use of a continuous field variable, identifying the evolving interface (i.e. the crack in fracture problems), without the need to update the domain discretization. According to the variational theory of fracture, the crack grows by following a path that ensures that the total energy of the system is always minimized In the present paper, we take advantage of such an approach for the description of fracture in highly deformable materials, such as the so-called elastomers. Starting from a statistical physics-based micromechanical model which employs the distribution function of the polymer's chains, we develop herein a phase-field approach to study the fracture occurring in this class of materials undergoing large deformations. Such a phase-field approach is finally applied to the solution of crack problems in elastomers. (C) 2019 The Authors. Published by Elsevier B.V.
引用
收藏
页码:694 / 702
页数:9
相关论文
共 19 条
[1]   A review on phase-field models of brittle fracture and a new fast hybrid formulation [J].
Ambati, Marreddy ;
Gerasimov, Tymofiy ;
De Lorenzis, Laura .
COMPUTATIONAL MECHANICS, 2015, 55 (02) :383-405
[2]   Constitutive models of rubber elasticity: A review [J].
Boyce, MC ;
Arruda, EM .
RUBBER CHEMISTRY AND TECHNOLOGY, 2000, 73 (03) :504-523
[3]   Mechanics of materials with embedded unstable molecules [J].
Brighenti, Roberto ;
Artoni, Federico ;
Cosma, Mattia Pancrazio .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2019, 162 :21-35
[4]   Defect sensitivity to failure of highly deformable polymeric materials [J].
Brighenti, Roberto ;
Carpinteri, Andrea ;
Artoni, Federico .
THEORETICAL AND APPLIED FRACTURE MECHANICS, 2017, 88 :107-116
[5]  
Doi M., 1996, Introduction to Polymer Physics
[6]  
Fixman M., 1971, MODERN THEORY POLYM
[7]   Revisiting brittle fracture as an energy minimization problem [J].
Francfort, GA ;
Marigo, JJ .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 1998, 46 (08) :1319-1342
[8]   Document embeddings learned on various types of n-grams for cross-topic authorship attribution [J].
Gomez-Adorno, Helena ;
Posadas-Duran, Juan-Pablo ;
Sidorov, Grigori ;
Pinto, David .
COMPUTING, 2018, 100 (07) :741-756
[9]   Continuum phase field modeling of dynamic fracture: variational principles and staggered FE implementation [J].
Hofacker, Martina ;
Miehe, Christian .
INTERNATIONAL JOURNAL OF FRACTURE, 2012, 178 (1-2) :113-129
[10]   Implementation aspects of a phase-field approach for brittle fracture [J].
Huynh, G. D. ;
Zhuang, X. ;
Nguyen-Xuan, H. .
FRONTIERS OF STRUCTURAL AND CIVIL ENGINEERING, 2019, 13 (02) :417-428