XFEM based method for buckling analysis of thin-walled beams

被引:6
|
作者
Marzok, Ameer [1 ]
Waisman, Haim [1 ]
机构
[1] Columbia Univ, Dept Civil Engn & Engn Mech, New York, NY 10027 USA
关键词
Thin-walled beams; XFEM; Buckling; Torsional buckling; FINITE-ELEMENT-METHOD; MODE DECOMPOSITION; STEEL STRUCTURES; CRACK-GROWTH; OPEN MEMBERS; STRIP METHOD; FORMULATION; BEHAVIOR; FRACTURE; DESIGN;
D O I
10.1016/j.tws.2023.110942
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Buckling of thin-walled beams involves complex deformation modes, making their analyses challenging. Most of the methods available for the computation of buckling loads of these elements rely on beam theories, which provide high computational efficiency, yet are limited in accuracy and versatility. On the other hand, the finite element method provides reliable solutions for a variety of structures, albeit with higher computational costs. This paper presents a new approach for the buckling analysis of thin-walled beams. The proposed model is developed by utilizing the eXtended Finite Element Method (XFEM). Global enrichment functions, based on the solutions of beam theory, are added to a standard 3D Finite Element (FE) coarse mesh in the longitudinal direction to enhance its performance and reduce the number of degrees of freedom. We consider the enrichment functions to be a set of modes derived from dynamic free vibrations of a beam or those derived from buckling analysis. The enriched nodes can be viewed as connected lines along the sections of the beam, enabling the computation of lateral-torsional buckling. While our XFEM method can be viewed as a semi-analytical approach, it does overcome well-known limitations of similar methods, e.g., the Finite Prism Method (FPM). For example, our method can in principle be extended to beams with non-prismatic cross-sections (e.g., tapered beams), open cross-sections, or those with perforations. However, these extensions are not discussed in the current paper. Furthermore, the XFEM method can also be applied to beams with different boundary conditions along the beam, such as lateral restraints. Additionally, one can improve the solution by sectional and/or longitudinal mesh refinements.The performance of the proposed method is investigated, and the results are compared with solutions obtained from FE models with a very fine mesh. It is shown that the proposed approach enables modeling thin-walled beams for buckling analysis using coarse FE mesh. In some cases, the number of degrees of freedom in XFEM is less than 5% of those required in the 3D FE model to achieve the same error in computing the first buckling load.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Lateral buckling capacities of thin-walled monosymmetric I-beams
    Kubo, M
    Kitahori, H
    THIN-WALLED STRUCTURES: RESEARCH AND DEVELOPMENT, 1998, : 705 - 712
  • [42] Sensitivity analysis of thin-walled beams and frames
    Kreja, I
    Mikulski, T
    Szymczak, C
    8TH INTERNATIONAL CONFERENCE ON MODERN BUILDING MATERIALS, STRUCTURES AND TECHNIQUES, 2004, : 796 - +
  • [43] Buckling and Post-Buckling of Thin-Walled Composite Laminated Beams-A Review of Engineering Analysis Methods
    Mittelstedt, Christian
    APPLIED MECHANICS REVIEWS, 2020, 72 (02)
  • [44] On improved stress analysis of thin-walled beams
    Stanek, M.
    Turk, G.
    Zeitschrift fuer Angewandte Mathematik und Mechanik, ZAMM, Applied Mathematics and Mechanics, 1998, 78 (Suppl 2):
  • [45] Post-buckling Analysis of Thin-Walled Structures using the SPH Method
    Lin, J.
    Naceur, H.
    Laksimi, A.
    Coutellier, D.
    11TH INTERNATIONAL CONFERENCE ON NUMERICAL METHODS IN INDUSTRIAL FORMING PROCESSES (NUMIFORM 2013), 2013, 1532 : 701 - 707
  • [46] CONSTRAINED FINITE ELEMENT METHOD FOR THE ANALYSIS OF SHEAR BUCKLING OF THIN-WALLED MEMBERS
    Adany, Sandor
    STEEL AND ALUMINIUM STRUCTURES, 2016,
  • [47] Lateral buckling analysis of thin-walled members by finite member element method
    Wu, Xiu-shui
    Xin, Ke-gui
    Jiang, Mei-lan
    Gong Cheng Li Xue/Engineering Mechanics, 2001, 18 (01): : 47 - 55
  • [48] Buckling analysis of composite thin-walled laminated beam
    Zhang, Z.-Y.
    1993, 6
  • [49] BUCKLING ANALYSIS OF THIN-WALLED MEMBERS WITH VARIABLE THICKNESS
    OHGA, M
    SHIGEMATSU, T
    KAWAGUCHI, K
    JOURNAL OF STRUCTURAL ENGINEERING, 1995, 121 (06) : 919 - 924
  • [50] On the GNI analysis of simple thin-walled beams with using linear buckling mode as geometric imperfection
    Haffar, M. Z.
    Taber, M. H.
    Adany, S.
    STABILITY AND DUCTILITY OF STEEL STRUCTURES 2019, 2019, : 468 - 475