hp-adaptive finite element analysis of thin-walled structures with use of the shell-to-shell transition elements

被引:0
|
作者
Zielinska, M. [1 ]
Zboinski, G. [1 ]
机构
[1] Univ Warmia & Mazury, Fac Tech Sci, Olsztyn, Poland
关键词
D O I
暂无
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
In this paper we consider hp-adaptive finite element analysis of thin-walled structures (plates and shells) with use of the adaptive shell-to-shell transition elements. Such elements are necessary in the case of complex mechanical description, i.e. when first-order shell and higher-order shell models are employed together for the mechanical characteristics of a thin-walled member. In such a case the transition model is necessary in order to change the plane stress and the lack of elongation of the lines perpendicular do the mid-surface, both valid in the first-order model, into the three-dimensional stress and strain states of the higher-order shell models. Our transition models are discretized with combined hp/hpq-approximations, where the longitudinal and transverse orders p and q, respectively, and the averaged dimension h of the transition element can vary adaptively. Note that in the case of the pure models, i.e. the first-order and higher-order shell models, we employ two-dimensional, hp, and hierarchical, three-dimensional, hpq, adaptive approximations, respectively. Our hitherto works concerned parametric (non-adaptive) studies of various transition models in the contexts of: hierarchical modelling effectivity, hierarchical approximations effectivity, and error estimation effectivity as well. In this paper we present the effectivity analysis of hp-adaptive procedures in the case of the transition models employed. This effectivity is compared to the cases of the pure, either first-order or higher-order, shell models of thin-walled structures.
引用
收藏
页码:63 / 72
页数:10
相关论文
共 50 条
  • [1] hp-adaptive finite element analysis of thin-walled structures with use of the numerical tools for detection and range assessment of boundary layers
    Miazio, L.
    Zboinski, G.
    RECENT ADVANCES IN COMPUTATIONAL MECHANICS, 2014, : 57 - 62
  • [2] Shell and solid type finite element analysis of creep in thin-walled structures
    Naumenko, K
    Altenbach, H
    THEORIES OF PLATES AND SHELLS: CRITICAL REVIEW AND NEW APPLICATIONS, 2004, 16 : 165 - 176
  • [3] Quadrilateral shell finite element for analysis of thin-walled reinforced concrete structures
    Fialko, S. Yu.
    MAGAZINE OF CIVIL ENGINEERING, 2014, 49 (05): : 27 - 36
  • [4] SHELL ELEMENT TEST FOR THIN-WALLED STRUCTURES
    RADAJ, D
    SCHILBERTH, G
    FORSCHUNG IM INGENIEURWESEN-ENGINEERING RESEARCH, 1979, 45 (04): : 101 - 104
  • [5] Application of an automatic hp adaptive Finite Element Method for thin-walled structures
    Tews, R.
    Rachowicz, W.
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2009, 198 (21-26) : 1967 - 1984
  • [6] Shell element for constrained finite element analysis of thin-walled structural members
    Adany, Sandor
    THIN-WALLED STRUCTURES, 2016, 105 : 135 - 146
  • [7] Modeling large deformations of thin-walled SMA structures by shell finite elements
    Porenta, Luka
    Lavrencic, Marko
    Dujc, Jaka
    Brojan, Miha
    Tusek, Jaka
    Brank, Bostjan
    COMMUNICATIONS IN NONLINEAR SCIENCE AND NUMERICAL SIMULATION, 2021, 101
  • [8] Nonlinear analysis of elastic thin-walled shell structures
    Gavriushin, Sergei S.
    Communications in Nonlinear Science and Numerical Simulation, 2002, 7 (04) : 223 - 233
  • [9] Constrained shell finite element method for thin-walled members with holes
    Adany, Sandor
    THIN-WALLED STRUCTURES, 2017, 121 : 41 - 56
  • [10] Shell finite element formulation for geometrically nonlinear analysis of curved thin-walled pipes
    Attia, Saher
    Mohareb, Magdi
    Martens, Michael
    Ghodsi, Nader Yoosef
    Li, Yong
    Adeeb, Samer
    THIN-WALLED STRUCTURES, 2022, 173