Numerical study of the interfaces of 3D-printed concrete using discrete element method

被引:11
|
作者
Valle-Pello, P. [1 ]
Alvarez-Rabanal, F. P. [1 ]
Alonso-Martinez, M. [1 ]
del Coz Diaz, J. J. [1 ]
机构
[1] Univ Oviedo, Dept Construct & Mfg Engn, Calle Pedro Puig Adam,Edificio Dept Oeste 7, Gijon 33204, Spain
关键词
Discrete element method (DEM); 3D concrete printing; interfaces; numerical modelling; cement-based materials; MODEL;
D O I
10.1002/mawe.201800188
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
3D concrete printing is an additive manufacturing method which reduces the time and improves the efficiency of the construction process. Structural behavior of printed elements is strongly influenced by the properties of the material and the interface surfaces. The printing process creates interface surfaces between layers in the horizontal and vertical directions. The bond strength between layers is the most critical property of printed elements. In this paper, the structural behavior of printed elements is studied using the discrete element method. The material is modelled using discrete particles with bonding between them. A new discrete model of a multilayer geometry is presented to study the behavior of the interfaces of printed concrete. The layers are made up of randomly placed particles to simulate the heterogeneous nature of concrete. The numerical model is developed to simulate the flexural behavior of multilayer specimens. A four-point flexural test is simulated considering the interface surfaces between layers. This numerical model provides relevant results to improve the behavior of this kind of structural elements. The aim of this work is to provide a discrete element model to predict the mechanical behavior of 3D concrete printed components.
引用
收藏
页码:629 / 634
页数:6
相关论文
共 50 条
  • [31] Specifics of plastic shrinkage in 3D-printed concrete elements
    Markin, Slava
    Combrinck, Riaan
    Mechtcherine, Viktor
    CEMENT AND CONCRETE RESEARCH, 2024, 184
  • [32] Designing osteogenic interfaces on 3D-Printed thermoplastic bone scaffolds
    Negi, Ankita
    Goswami, Kajal
    Diwan, Himanshi
    Agrawal, Garima
    Murab, Sumit
    MATERIALS TODAY CHEMISTRY, 2025, 45
  • [33] Experimental study on damage anisotropy of 3D-printed concrete exposed to sulfate attack
    Rui, Aoyu
    Wang, Li
    Lin, Wenyu
    Ma, Guowei
    CONSTRUCTION AND BUILDING MATERIALS, 2023, 407
  • [34] Experimental study on in-situ mesh fabrication for reinforcing 3D-printed concrete
    Cao, Xiangpeng
    Wu, Shuoli
    Cui, Hongzhi
    AUTOMATION IN CONSTRUCTION, 2025, 170
  • [35] Establishing Benchmark Properties for 3D-Printed Concrete: A Study of Printability, Strength, and Durability
    Sapata, Alise
    Sinka, Maris
    Sahmenko, Genadijs
    Bensa, Lidija Korat
    Hanzic, Lucija
    Ster, Katarina
    Rucevskis, Sandris
    Bajare, Diana
    Bos, Freek P.
    JOURNAL OF COMPOSITES SCIENCE, 2025, 9 (02):
  • [36] Blast resistance of 3D-printed Bouligand concrete panels reinforced with steel fibers: Numerical investigations
    Nguyen-Van, Vuong
    Tran, Phuong
    Ha, Ngoc San
    Xie, Yi Min
    Aslani, Farhad
    COMPOSITE STRUCTURES, 2024, 348
  • [37] Modeling of the fracture behaviors of concrete using 3D discrete element method with softening effect
    Li, Fengchen
    Feng, J. L.
    Chen, Xin
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 2024, 133
  • [38] Study of RIS Unit Cells Using 3D-Printed Waveguides
    A. S. Tyarin
    K. A. Glinskiy
    A. A. Kureev
    E. M. Khorov
    Journal of Communications Technology and Electronics, 2024, 69 (10) : 402 - 407
  • [39] 3D-PRISE: 3D-Printed Reconfigurable Intelligent Surface Element
    Tyarin, Andrey
    Glinskiy, Kirill
    Kureev, Aleksey
    Khorov, Evgeny
    2024 IEEE INTERNATIONAL BLACK SEA CONFERENCE ON COMMUNICATIONS AND NETWORKING, BLACKSEACOM 2024, 2024, : 364 - 367
  • [40] Numerical prediction of orthotropic elastic properties of 3D-printed materials using micro-CT and representative volume element
    Biswas, P.
    Guessasma, S.
    Li, J.
    ACTA MECHANICA, 2020, 231 (02) : 503 - 516