Fracture analysis of multifunctional fiber-reinforced concrete using phase-field method

被引:6
作者
Sadighi, Amirreza [1 ]
Maghami, Ebrahim [1 ]
Khaneghahi, Mohammad Houshmand [2 ]
Kamireddi, Divya [3 ]
Rahmaninezhad, Seyed Ali [2 ]
Farnam, Yaghoob [2 ]
Sales, Christopher M. [2 ]
Schauer, Caroline L. [3 ]
Najafi, Ahmad R. [1 ]
机构
[1] Drexel Univ, Dept Mech Engn & Mech, Philadelphia, PA 19104 USA
[2] Drexel Univ, Dept Civil Architectural & Environm Engn, Philadelphia, PA 19104 USA
[3] Drexel Univ, Dept Mat Sci & Engn, Philadelphia, PA 19104 USA
基金
美国国家科学基金会;
关键词
Fiber-reinforced concrete; Finite element method; Crack propagation; Phase-field fracture; Fracture mechanics; FINITE-ELEMENT-METHOD; COHESIVE ZONE MODEL; MECHANICAL-PROPERTIES; BRITTLE-FRACTURE; GRADIENT DAMAGE; SUPERABSORBENT POLYMERS; VARIATIONAL APPROACH; SHRINKAGE CRACKING; FLEXURAL BEHAVIOR; CARBON;
D O I
10.1016/j.ijsolstr.2023.112493
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
In this paper, a numerical analysis has been conducted to predict the fracture response of a novel type of fiber reinforced concrete blocks, called "multi-functional fiber reinforced concretes"(MFRCs). In MFRCs, fibers have been coated with a shell. This will allow the structure to be used for multiple purposes, including concrete self-healing. This study is conducted utilizing phase-field fracture framework. The shell thickness and the ratio of fiber length to diameter are the geometrical parameters whose effects on the fracture resistance of the MFRCs have been analyzed. As choosing the right shell material is under investigation, in the next step of the study, in addition to the geometrical factors, different material mismatch cases for the critical energy release rate of the shell has been analyzed. Moreover, the application of two different fibers, polyester fiber and polypropylene fiber (with almost 10 times higher critical energy release rate), are looked into. All the structures undergo three loading conditions: tensile loading, compressive loading, and three-point bending. In order to judge what configuration performs best, the values of peak force and absorbed energy of each structure in each case study have been taken into consideration and compared with those of other structures. It was seen that the most favorable performance and configuration depend on the loading condition and also the material set. Under tension, MFRCs with the lowest fiber length to diameter ratio exhibit the highest peak force and absorbed energy in the case of polyester fiber. The same observation was made for all models and material sets under compressive loading. Under three-point bending loading condition, for the cases of polyester fiber, similar results were obtained as the lowest fiber length to diameter ratio showed the best mechanical response. Having said that, it must be mentioned that shell material had a dominant effect on the fracture response of the structure under this loading condition. Polypropylene fibers also managed to increase the peak forces in different loading conditions.
引用
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页数:25
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共 141 条
  • [1] Abaqus D., 2021, Abaqus 2021
  • [2] First UK field application and performance of microcapsule-based self-healing concrete
    Al-Tabbaa, Abir
    Litina, Chrysoula
    Giannaros, Petros
    Kanellopoulos, Antonios
    Souza, Livia
    [J]. CONSTRUCTION AND BUILDING MATERIALS, 2019, 208 : 669 - 685
  • [3] Effect of micro-macro crack interaction on softening behaviour of concrete fracture
    Alam, Syed Yasir
    Loukili, Ahmed
    [J]. INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2020, 182 (182-183) : 34 - 45
  • [4] Phase-field modeling of brittle fracture using an efficient virtual element scheme
    Aldakheel, Fadi
    Hudobivnik, Blaz
    Hussein, Ali
    Wriggers, Peter
    [J]. COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2018, 341 : 443 - 466
  • [5] Phase-field modeling of ductile fracture
    Ambati, M.
    Gerasimov, T.
    De Lorenzis, L.
    [J]. COMPUTATIONAL MECHANICS, 2015, 55 (05) : 1017 - 1040
  • [6] [Anonymous], 2007, ASTM-D5528, DOI [10.1520/D5528-94A, DOI 10.1520/D5528-94A]
  • [7] Analysis of three-dimensional crack initiation and propagation using the extended finite element method
    Areias, PMA
    Belytschko, T
    [J]. INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2005, 63 (05) : 760 - 788
  • [8] A direct XFEM formulation for modeling of cohesive crack growth in concrete
    Asferg, J. L.
    Poulsen, P. N.
    Nielsen, L. O.
    [J]. COMPUTERS AND CONCRETE, 2007, 4 (02) : 83 - 100
  • [9] THEORY OF MULTIPLE FRACTURE OF FIBROUS COMPOSITES
    AVESTON, J
    KELLY, A
    [J]. JOURNAL OF MATERIALS SCIENCE, 1973, 8 (03) : 352 - 362
  • [10] The effect of fiber properties on high performance alkali-activated slag/silica fume mortars
    Aydin, Serdar
    Baradan, Bulent
    [J]. COMPOSITES PART B-ENGINEERING, 2013, 45 (01) : 63 - 69