Concurrent multi-material and multi-scale design optimization of fiber-reinforced composite material and structures for minimum structural compliance

被引:47
作者
Duan, Zunyi [1 ]
Liu, Yuqi [1 ]
Fan, Junling [2 ,3 ]
Long, Kai [4 ]
Xu, Bin [1 ]
Zhu, Jihong [5 ]
Yan, Jun [6 ]
机构
[1] Northwestern Polytech Univ, Sch Mech Civil Engn & Architecture, Xian 710072, Shaanxi, Peoples R China
[2] Aircraft Strength Res Inst, Xian 710065, Peoples R China
[3] Xi An Jiao Tong Univ, State Key Lab Strength & Vibrat Mech Struct, Xian 710072, Shaanxi, Peoples R China
[4] North China Elect Power Univ, State Key Lab Alternate Elect Power Syst Renewable, Beijing 102206, Peoples R China
[5] Northwestern Polytech Univ, State IJR Ctr Aerosp Design & Addit Mfg, MIIT Lab Met Addit Mfg & Innovat Design, Xian 710072, Shaanxi, Peoples R China
[6] Dalian Univ Technol, Int Res Ctr Computat Mech, Dept Engn Mech, State Key Lab Struct Anal Ind Equipment, Dalian 116024, Liaoning, Peoples R China
基金
中国国家自然科学基金;
关键词
Variable stiffness of laminated composite; Multi -material topology optimization; Multi -scale design optimization; Concurrent multi -scale design optimization; Additive manufacturing; MAXIMUM FUNDAMENTAL-FREQUENCY; TOPOLOGY OPTIMIZATION; LAMINATED COMPOSITES; STACKING-SEQUENCE; DISCRETE MATERIAL; THICKNESS OPTIMIZATION; POLYMER COMPOSITES; FORCING CONVEXITY; PARAMETERS; ANGLE;
D O I
10.1016/j.compstruct.2023.116796
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
With the development of additive manufacturing technology for fiber-reinforced composite materials, topology optimization of fiber-reinforced composite laminates involving multiple materials and variable stiffness is gaining increasing attention. This study proposes an effective methodology for a Multi-scale and Multi-material Composite Anisotropic Penalization (MMCAP) model to investigate multi-scale and multi-material design opti-mization of a fiber-reinforced variable stiffness (VS) composite structure to minimize structural compliance. In the concurrent MMCAP model, the macroscopic multi-material structural topology and microscopic discrete fiber laying angle selection are introduced as independent design variables and optimized simultaneously. The modified Solid Isotropic Material with Penalization (SIMP) and the Discrete Material Optimization (DMO) ap-proaches are utilized at the macro-and micro-scales, respectively, to realize a clear macroscopic multi-material structural topology and microscopic specific discrete fiber laying angle selection. Multi-material fiber-reinforced plastic (FRP) materials, such as carbon fiber-reinforced plastic (CFRP) and glass fiber-reinforced plastic (GFRP), are considered two types of solid materials in terms of structural volume cost. Sensitivity analysis of the struc-tural compliance concerning the variables of the two geometrical scales is performed using the analytical sensitivity analysis method. The DMO approach is utilized to couple two geometrical scales: macroscopic to-pology and microscopic material selection. The capabilities of the proposed MMCAP are demonstrated by con-current multi-material and multi-scale design optimization of composite panels. The influence of the number of discrete fiber laying angles on the structural compliance and optimized topology configuration is also been discussed. Numerical studies showed that the proposed MMCAP scheme can effectively realize multi-material and multi-scale design optimization of fiber-reinforced composite structure with achieving a clear macro-scopic multi-material structural topology and microscopic fiber laying angle. The proposed MMCAP scheme provides a new implementation strategy for lightweight, multi-material, and multi-scale design optimization of composite materials, considering the design and manufacturing collaboration through additive manufacturing technology.
引用
收藏
页数:13
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