On compliance and buckling objective functions in topology optimization of snap-through problems

被引:83
|
作者
Lindgaard, Esben [1 ]
Dahl, Jonas [1 ]
机构
[1] Aalborg Univ, Dept Mech & Mfg Engn, DK-9220 Aalborg, Denmark
关键词
Topology optimization; Buckling; Structural stability; Critical load; Geometrically nonlinear; Design sensitivity analysis; STRUCTURAL OPTIMIZATION; DESIGN; STABILITY;
D O I
10.1007/s00158-012-0832-2
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
This paper deals with topology optimization of static geometrically nonlinear structures experiencing snap-through behaviour. Different compliance and buckling criterion functions are studied and applied for topology optimization of a point loaded curved beam problem with the aim of maximizing the snap-through buckling load. The response of the optimized structures obtained using the considered objective functions are evaluated and compared. Due to the intrinsic nonlinear nature of the problem, the load level at which the objective function is evaluated has a tremendous effect on the resulting optimized design. A well-known issue in buckling topology optimization is artificial buckling modes in low density regions. The typical remedy applied for linear buckling does not have a natural extension to nonlinear problems, and we propose an alternative approach. Some possible negative implications of using symmetry to reduce the model size are highlighted and it is demonstrated how an initial symmetric buckling response may change to an asymmetric buckling response during the optimization process. This problem may partly be avoided by not exploiting symmetry, however special requirements are needed of the analysis method and optimization formulation. We apply a nonlinear path tracing algorithm capable of detecting different types of stability points and an optimization formulation that handles possible mode switching. This is an extension into the topology optimization realm of a method developed, and used for, fiber angle optimization in laminated composite structures. We finally discuss and pinpoint some of the issues related to buckling topology optimization that remains unsolved and demands further research.
引用
收藏
页码:409 / 421
页数:13
相关论文
共 50 条
  • [21] A Rolling Soft Robot Driven by Local Snap-Through Buckling
    Yang, Pengfei
    Mao, Yuqing
    Liu, Hong
    Gao, Luyu
    Huang, Feng
    Dang, Fei
    SOFT ROBOTICS, 2024,
  • [22] Effects of Elastic Supports on the Snap-through Buckling of Mises Trusses
    Cai, J.
    Feng, J.
    Xu, Y.
    MECHANICS OF SOLIDS, 2019, 54 (03) : 486 - 490
  • [23] Snap-through buckling analyses of composite shallow spherical shells
    Akkas, N
    Toroslu, R
    MECHANICS OF COMPOSITE MATERIALS AND STRUCTURES, 1999, 6 (04): : 319 - 330
  • [25] DESIGN OF NONLINEAR ENERGY HARVESTER WITH SNAP-THROUGH BUCKLING MECHANISM
    Seong, Sumin
    Lee, Soobum
    PROCEEDINGS OF THE ASME INTERNATIONAL DESIGN ENGINEERING TECHNICAL CONFERENCES AND COMPUTERS AND INFORMATION IN ENGINEERING CONFERENCE, 2014, VOL 8, 2014,
  • [26] SNAP-THROUGH BUCKLING OF RETICULATED SPACE-TRUSSES - DISCUSSION
    CRISFIELD, MA
    JOURNAL OF THE STRUCTURAL DIVISION-ASCE, 1982, 108 (01): : 307 - 308
  • [27] Snap-through buckling analyses of composite shallow spherical shells
    Akkas, Nuri
    Toroslu, Ridvan
    Mechanics of Composite Materials and Structures, 6 (04): : 319 - 330
  • [28] Toward the topology design of mechanisms that exhibit snap-through behavior
    Bruns, TE
    Sigmund, O
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2004, 193 (36-38) : 3973 - 4000
  • [29] Design of a Bi-stable Airfoil with Tailored Snap-through Response Using Topology Optimization
    Bhattacharyya, Anurag
    Conlan-Smith, Cian
    James, Kai A.
    COMPUTER-AIDED DESIGN, 2019, 108 : 42 - 55
  • [30] Snap-through buckling of initially curved microbeam subject to an electrostatic force
    Chen, X.
    Meguid, S. A.
    PROCEEDINGS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2015, 471 (2177):