Simulation of mechanical behaviour of polychloroprene/versatic acid vinyl ester/methyl methacrylate/2-ethylhexyl acrylate copolymer blend

被引:0
作者
Daiva Zeleniakiene
Paulius Griskevicius
Valdas Norvydas
Andrey Aniskevich
Kristina Zukiene
机构
[1] Kaunas University of Technology,Department of Mechanical Engineering
[2] Kaunas University of Technology,Department of Production Engineering
[3] University of Latvia,Institute for Mechanics of Materials
来源
Iranian Polymer Journal | 2018年 / 27卷
关键词
Finite element analysis; Homogenization approach; Microstructure; Elastomeric blend; Mechanical behaviour;
D O I
暂无
中图分类号
学科分类号
摘要
Finite element modelling and homogenization approaches are very common for prediction of mechanical performance of composite materials. Polymer blends also display a heterogeneous microstructure and the use of these methods to assess elastomeric blends is poorly investigated. The main purpose of present investigation is to analyze the possibility of finite element modelling by homogenization approach for elastomeric polychloroprene (PCP)/versatic acid vinyl ester/methyl methacrylate/2-ethylhexyl acrylate (VeoVa-11/MMA/2-EHA) copolymer blend. To examine the properties of specifically obtained materials, two types (random and periodical) of finite element models of the blend microstructure were devised. The Mooney–Rivlin function was chosen for the description of both PCP and VeoVa-11/MMA/EHA copolymer. The modelling showed that there was not any difference between the periodical and random finite element models. The finite element modelling results exhibited a good agreement with the experimentally obtained values for prediction of the mechanical behaviour of the blend under large deformations. Therefore, the condition under high strain was studied to predict the effect of VeoVa-11/MMA/EHA copolymer content on the stress value of the blend. It was found that the strength of the blend with a small amount of VeoVa-11/MMA/EHA (5–10%) was lower in comparison with that of PCP strength. However, the higher amount of copolymer (15–20%) had the strengthening effect on the blend.
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页码:97 / 103
页数:6
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共 62 条
  • [1] Mehravar S(2017)Relating polymer microstructure to adhesive performance in blends of hybrid polyurethane/acrylic latexes Eur Polym J 87 300-307
  • [2] Ballard N(2005)The effect of surface properties on the adhesion of modified polychloroprene used as adhesive J Adhes Sci Technol 19 627-638
  • [3] Agirre A(2017)An updated review of adhesively bonded joints in composite materials Int J Adhes Adhes 72 30-42
  • [4] Tomovska R(2012)A comparison among Neo-Hookean model, Mooney-Rivlin model, and Ogden model for chloroprene rubber Int J Precis Eng Manuf 13 759-764
  • [5] Asua JM(2006)A Comparative study of several material models for prediction of hyper elastic properties: application to silicone rubber and soft tissues Strain 42 135-147
  • [6] Zukiene K(2016)Multi-mode modeling of global and local deformation, and failure, in particle filled epoxy systems Compos A 88 1-9
  • [7] Jankauskaite V(2013)Micromechanical analysis of polymer composites reinforced by unidirectional fibres: part II—micromechanical analyses Int J Solids Struct 50 1906-1915
  • [8] Budhe S(2017)Three-dimensional nonlinear micro/meso-mechanical response of the fibre-reinforced polymer composites Compos Struct 161 204-214
  • [9] Banea MD(2014)Application of periodic boundary conditions on multiple part finite element meshes for the meso-scale homogenization of textile fabric composites Compos Sci Technol 92 41-54
  • [10] de Barros S(2015)A progressive damage model of textile composites on meso-scale using finite element method: fatigue damage analysis Comput Struct 152 96-112