Topology optimization of load-bearing capacity

被引:0
|
作者
Leyla Mourad
Jeremy Bleyer
Romain Mesnil
Joanna Nseir
Karam Sab
Wassim Raphael
机构
[1] Ecole des Ponts ParisTech,Laboratoire Navier
[2] Université Saint Joseph,Faculté d’ingénierie
关键词
Topology optimization; Limit analysis; Bearing capacity; Second-order cone programming; No-tension material; Michell truss;
D O I
暂无
中图分类号
学科分类号
摘要
The present work addresses the problem of maximizing a structure load-bearing capacity subject to given material strength properties and a material volume constraint. This problem can be viewed as an extension to limit analysis problems which consist in finding the maximum load capacity for a fixed geometry. We show that it is also closely linked to the problem of minimizing the total volume under the constraint of carrying a fixed loading. Formulating these topology optimization problems using a continuous field representing a fictitious material density yields convex optimization problems which can be solved efficiently using state-of-the-art solvers used for limit analysis problems. We further analyze these problems by discussing the choice of the material strength criterion, especially when considering materials with asymmetric tensile/compressive strengths. In particular, we advocate the use of a L1-Rankine criterion which tends to promote uniaxial stress fields as in truss-like structures. We show that the considered problem is equivalent to a constrained Michell truss problem. Finally, following the idea of the SIMP method, the obtained continuous topology is post-processed by an iterative procedure penalizing intermediate densities. Benchmark examples are first considered to illustrate the method overall efficiency while final examples focus more particularly on no-tension materials, illustrating how the method is able to reproduce known structural patterns of masonry-like structures. This paper is accompanied by a Python package based on the FEniCS finite-element software library.
引用
下载
收藏
页码:1367 / 1383
页数:16
相关论文
共 50 条
  • [21] Load-bearing capacity of plain concrete walls
    Hegger, J.
    Dressen, T.
    Will, N.
    MAGAZINE OF CONCRETE RESEARCH, 2009, 61 (03) : 173 - 182
  • [22] OPTIMIZATION OF LOAD-BEARING COMPONENTS OF SHACKLE FASTENERS
    Elksnin, Vik. V.
    Priimak, O. A.
    Elksnin, Vl. V.
    CHEMICAL AND PETROLEUM ENGINEERING, 2006, 42 (9-10) : 528 - 533
  • [23] Structural Optimization of Load-Bearing Heated Structures
    Kretov A.S.
    Shataev P.A.
    Russian Aeronautics, 2019, 62 (04): : 555 - 563
  • [24] RESTORATION OF LOAD-BEARING CAPACITY OF JOINTS WITH AN INTERFERENCE FIT
    KHVOROSTUKHIN, IA
    RUSSIAN ENGINEERING JOURNAL, 1980, 60 (09): : 18 - 21
  • [25] THE LOAD-BEARING CAPACITY OF WELDED OVERHEAD RAIL TRACKS
    KLYKOV, NA
    LUSHNIKOV, VA
    LIVSHITS, LN
    KRYMOV, VG
    AUTOMATIC WELDING USSR, 1983, 36 (09): : 15 - 17
  • [26] Load-bearing capacity of nailed joints exposed to fire
    Noren, Joakim
    Fire and Materials, 1996, 20 (03) : 133 - 143
  • [27] Load-bearing capacity of corroded reinforced concrete joists
    Vercher, J.
    Gil, E.
    Mas, A.
    STRUCTURES AND ARCHITECTURE: CONCEPTS: APPLICATIONS AND CHALLENGES, 2013, : 873 - 880
  • [28] Plastic depth and load-bearing capacity of autofrettaged cylinders
    Zhu, Ruilin
    Zhu, Guolin
    Mao, Aifeng
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2016, 30 (06) : 2627 - 2633
  • [30] Computation of load-bearing capacity of fixings of sandwich panels
    Misiek, Th
    Kaepplein, S.
    Hettmann, R.
    Saal, H.
    Ummenhofer, Th
    BAUINGENIEUR, 2011, 86 : 418 - 424