CAD-based Adjoint Optimization Using Other Components in a CAD Model Assembly as Constraints

被引:0
作者
Agarwal D. [1 ]
Robinson T.T. [2 ]
Armstrong C.G. [2 ]
机构
[1] The University of Liverpool, United Kingdom
[2] Queen’s University Belfast, United Kingdom
基金
欧盟地平线“2020”;
关键词
adjoint methods; CAD; constraints; interference; product assembly; shape optimization;
D O I
10.14733/cadaps.2023.749-762
中图分类号
学科分类号
摘要
This paper presents a CAD-based shape optimization process which exploits the capabilities of modern CAD systems to enforce assembly constraints within the optimization process. The assembly constraints are imposed using adjacent components in the CAD model assembly, which the component being optimized is not allowed to overlap with. This is important in industrial workflows, where unwanted interference can often result during the final product assembly. Here, an optimization framework is presented where the parameters defining the features in a feature-based CAD model are used as design variables, and their gradients are computed by combining design velocities with sensitivities computed using adjoint methods. The benefits of this framework are three-fold: (1) the use of adjoint methods makes the computational cost essentially independent of the number of design variables, (2) the optimized geometry is available as a feature-based CAD model that can be easily used for downstream processes, (3) the optimized geometry respects space constraints imposed by other parts in the assembly. In this paper, the developed framework is demonstrated for the optimization of models created in CATIA V5, to be assembled with other components defined in the CATIA V5 assembly workbench. © 2023 CAD Solutions, LLC.
引用
收藏
页码:749 / 762
页数:13
相关论文
共 37 条
[1]  
Aerodynamic Design Optimization: Drag Minimization of the NACA 0012 in Transonic Inviscid Flow
[2]  
Ansys ICEM CFD
[3]  
ONERA M6
[4]  
Scipy Optimize
[5]  
Agarwal D., Robinson T.T., Armstrong C.G., Marques S., Vasilopoulos I., Meyer M., Parametric design velocity computation for CAD-based design optimization using adjoint methods, Engineering with Computers, 34, 2, pp. 225-239, (2018)
[6]  
Ahuja N., Chien R.T., Yen R., Bridwell N., Interference Detection and Collision Avoidance Among Three Dimensional Objects, AAAI-80 Proceedings, pp. 44-48
[7]  
Anderson W.K., Venkatakrishnan V., Aerodynamic design optimization on unstructured grids with a continuous adjoint formulation, Computers and Fluids, 28, pp. 443-480, (1999)
[8]  
Boyse J.W., Interference detection among solids and surfaces, Communications of the ACM, 22, 1, pp. 3-9, (1979)
[9]  
Burgreen G.W., Baysal O., Three-dimensional aerodynamic shape optimization using discrete sensitivity analysis, AIAA Journal, 34, 9, pp. 1761-1770, (1996)
[10]  
Castro C., Lozano C., Palacios F., Zuazua E., Systematic continuous adjoint approach to viscous aerodynamic design on unstructured grids, AIAA Journal, 45, 9, pp. 2125-2139, (2007)