Structural shape optimization of parts bounded by free-form surfaces

被引:2
|
作者
Guillet, S
Noel, F
Leon, JC
机构
[1] Laboratoire des Sols, Solides, Structures URA-CNRS 1511, F-38041 Grenoble Cedex 9
来源
STRUCTURAL OPTIMIZATION | 1996年 / 11卷 / 3-4期
关键词
D O I
10.1007/BF01197030
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Shape optimization of a mechanical structure is an important issue to find the value of critical parameters. This process has a special interest when the shape modification can be carried out in the environment of CAD software, thus creating a new, optimized object in the database of this software. Such an approach has been developed for geometric models embedding canonical surfaces such as planes, cylinders, cones, etc. However, many situations occur where the geometry of the model uses free form surfaces. The description of a new approach to optimize the shape of a mechanical structure is performed through the analysis of the different steps involved in the case study of a hook. It is an example of an object bounded by free form surfaces subjected to various shape constraints and mechanical requirements. The objective is to minimize the mass. The technique developed proceeds in a CAD software environment through an integrated approach. First, a description of a new mechanism employed to create the deformation of a free form surface is conducted. The resulting deformation is connected to design parameters and relies on an analogy between a mechanical model and the description of a free surface based on a B-spline or a NURBS model. The approach developed largely reduces of the number of optimization parameters, thus reducing drastically the computational effort required during the optimization process. Second, a mesh adaption technique is introduced to adapt and preserve the FE mesh during the optimization process with regard to the shape modification of the hook. This adaption technique is connected to the surface deformation mechanism. Then, the sensitivity analysis required for the optimization process is described according to the geometrical and mechanical aspects of the methods developed. A standard discretized continuous gradient technique is used to evaluate the sensitivity of the mechanical stresses associated to the structure with respect to the mesh node positions. Specific developments are presented to calculate the sensitivity of mesh nodes with respect to the design parameters of the optimization problem. Finally, the optimization process is situated with respect to the CAD software environment and the various treatments required are summarized. The results of the shape optimization are highlighted both on a computational and on a mechanical basis.
引用
收藏
页码:159 / 169
页数:11
相关论文
共 50 条
  • [21] Constrained shape optimization of free-form shells considering material creep
    San, Bingbing
    He, Haiyun
    Feng, Dongming
    Qiu, Ye
    Huang, Yanting
    ENGINEERING OPTIMIZATION, 2022, 54 (10) : 1787 - 1800
  • [22] Shape optimization of free-form cable-braced grid shells
    The Key Laboratory of Concrete and Prestressed Concrete Structures of the Ministry of Education, Southeast University, Nanjing 210096, China
    不详
    Tumu Gongcheng Xuebao, 4 (64-70):
  • [23] Structural shape optimization of free-form surface shell and property of solution search using firefly algorithm
    Tanaka, Natsuki
    Honma, Toshio
    Yokosuka, Yohei
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2015, 29 (04) : 1449 - 1455
  • [24] Probabilistic approach to free-form airfoil shape optimization under uncertainty
    Huyse, L
    Padula, SL
    Lewis, RM
    Li, W
    AIAA JOURNAL, 2002, 40 (09) : 1764 - 1772
  • [25] Brick Patterning on Free-Form Surfaces
    Rajabzadeh, Shaghayegh
    Sassone, Mario
    NEXUS NETWORK JOURNAL, 2017, 19 (01) : 5 - 25
  • [26] Shape-thickness-topology coupled optimization of free-form shells
    Meng, Xianchuan
    Xiong, Yulin
    Xie, Yi Min
    Sun, Yuxin
    Zhao, Zi-Long
    AUTOMATION IN CONSTRUCTION, 2022, 142
  • [27] Free-form surface parts quality inspection optimization with a novel sampling method
    Li, Taifeng
    Gao, Liang
    Pan, Quanke
    Li, Peigen
    APPLIED SOFT COMPUTING, 2018, 62 : 550 - 570
  • [28] Reverse engineering of free-form surfaces
    Werner, A
    Skalski, K
    Piszczatowski, S
    Swieszkowski, W
    Lechniak, Z
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 1998, 76 (1-3) : 128 - 132
  • [29] The precise measurement of free-form surfaces
    Wolovich, W
    Albakri, H
    Yalcin, H
    JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2002, 124 (02): : 326 - 332
  • [30] Brick Patterning on Free-Form Surfaces
    Shaghayegh Rajabzadeh
    Mario Sassone
    Nexus Network Journal, 2017, 19 : 5 - 25