Finite element modelling of compressive mechanical behaviour of high and low density polymeric foams

被引:21
|
作者
Alvarez, P. [1 ]
Mendizabal, A. [1 ]
Petite, M. M. [1 ]
Rodriguez-Perez, M. A. [2 ]
Echeverria, A. [1 ]
机构
[1] Asociac Ctr Invest Tecnol Union LORTEK, Ordizia 20240, Spain
[2] Univ Valladolid, Cellular Mat Lab, Condensed Matter Phys Dept, E-47002 Valladolid, Spain
关键词
Finite element modelling; cellular materials; virtual foam structures; representative volume element (RVE); compressive behaviour; OPEN-CELL FOAMS; HIGH-STRAIN COMPRESSION; ELASTIC PROPERTIES;
D O I
10.1002/mawe.200900417
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this work, different methodologies were studied by means of finite element modelling (FEM) with the aim of predicting the mechanical behaviour of high and low relative density (rho(r)) polymeric foams. Virtual structures which resemble the real ones were created by various computer-based tools. These tools were employed to make up both "unit cells" and random structural units so-called "Representative Volume Elements" (RVE). Low rho(r) foams are usually modelled as regular (tetrakaidecahedron) and irregular (Voronoi tessellations) 3D structures made of structural elements (beams and shells). These types of finite elements are only applicable if the ratio between longitudinal and axial dimensions exceeds a certain value and therefore, there is a practical relative density limit above which these elements are not suitable. Alternatively, virtual low rho(r) foams were created by means of cellular automata which allow a close control of bubble growth and final cell character and do not show the previous limitation. Additionally, virtual high & structures (rho(r) > 0.5) consisting of isolated bubbles or cells were created by random incorporation of cell sets whose size distributions adjust to experimentally measured ones. A random sequential adsorption algorithm (RSA) which accurately controls final thickness of ligaments between cells was programmed for this purpose. FEM results of this kind of virtual foams are compared with experimentally tested mechanical properties. Moreover, impact of structural parameters (mean cell size) on elastic modulus and compressive collapse stress is critically assessed.
引用
收藏
页码:126 / 132
页数:7
相关论文
共 50 条
  • [31] Compressive Behavior of Moderately Expanded Low Density Polyethylene (LDPE) Foams
    Uneyama, Takashi
    Honda, Tetsuhiro
    Igarashi, Toshiro
    Nitta, Koh-hei
    NIHON REOROJI GAKKAISHI, 2016, 44 (01) : 29 - 38
  • [33] Finite element modelling of driven notch behaviour in polymer
    Guan, ZW
    ADVANCES IN FINITE ELEMENT TECHNOLOGY, 1996, : 429 - 436
  • [34] Finite element modelling of delamination onset in polymeric composite material
    Ferrari, Andrea
    Fanelli, Sergio
    Parlamento, Matteo
    Key Engineering Materials, 2019, 827
  • [35] Finite element modelling of the fracture behaviour of brittle coatings
    Bansal, P
    Shipway, PH
    Leen, SB
    SURFACE & COATINGS TECHNOLOGY, 2006, 200 (18-19): : 5318 - 5327
  • [36] Finite element modelling of SMA textiles: superelastic behaviour
    Lomov, Stepan V.
    Moesen, Maarten
    Stalmans, Rudy
    Trzcinski, Gosia
    Van Humbeeck, Jan
    Verpoest, Ignaas
    JOURNAL OF THE TEXTILE INSTITUTE, 2011, 102 (03) : 232 - 247
  • [37] Template synthesis of low-density gold foams: Density, microstructure and compressive strength
    Zhang, Kuibao
    Tan, Xiulan
    Wu, Weidong
    Tang, Yongjian
    MATERIALS RESEARCH BULLETIN, 2013, 48 (09) : 3499 - 3504
  • [38] Quasistatic and high strain rate uniaxial compressive response of polymeric structural foams
    Subhash, G
    Liu, QL
    Gao, XL
    INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 2006, 32 (07) : 1113 - 1126
  • [39] Finite element analysis of the compressive and shear responses of structural foams using computed tomography
    Chen, Youming
    Das, Raj
    Battley, Mark
    COMPOSITE STRUCTURES, 2017, 159 : 784 - 799
  • [40] MORPHOLOGICAL ANALYSIS AND NUMERICAL MODELLING OF THE MECHANICAL BEHAVIOUR OF POLYPROPYLENE BEAD FOAMS
    Gude, Maik
    Koschichow, Roman
    Liebsch, Alexander
    Mueller, Michael
    Stegelmann, Michael
    PROCEEDINGS OF THE 7TH INTERNATIONAL CONFERENCE ON MECHANICS AND MATERIALS IN DESIGN (M2D2017), 2017, : 569 - 574