Thermomechanical Performance of Sandwich Structures with Optimized Variable Thickness Lattice Cores

被引:0
作者
Al Aridi, Rimah [1 ]
Gross, Andrew J. [1 ]
机构
[1] Univ South Carolina, Dept Mech Engn, 541 Main St, Columbia, SC 29208 USA
来源
AIAA SCITECH 2024 FORUM | 2024年
关键词
D O I
暂无
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Shell-based structures are used by many components in aerospace design, as they offer efficient load-bearing capabilities and exceptional adaptability. This adaptability is realized through the strategic integration of stiffeners, localized tuning of section properties with fiber-reinforced materials, and the incorporation of variations in shell thickness. This study is dedicated to optimizing thickness distributions for shell-based sandwich structures through a deterministic iterative approach. Distinguishing itself from conventional optimization methods, this methodology does not rely on gradient calculations or random variables. Instead, finite element model results are harmonized with theoretical limits governing the distribution of strain energy in structures or materials residing on that theoretical threshold. Local, quantifiable deviations from this limit serve as the foundation for updating element thickness, propelling structural or material stiffness toward the theoretical boundary. To facilitate the iterative thickness optimization process, unit cell models of sandwich panels with advanced core materials are constructed. Conventional honeycomb core is considered as well as multiple truss cores (simple cubic, body centered cubic, octahedron, and octet) as well as a P-type triply periodic minimum surface. Unit cell models with periodic boundary conditions for the various sandwich structures enables high-fidelity simulations and an efficient means of determining optimal material allocation with minimal computational expense. Additionally, the approach accommodates fundamental loading states, such as pure membrane loading or pure bending, allowing for the extraction of effective section properties, including axial and flexural moduli. Extending the applicability of this methodology, thermal conductivity through the thickness and in the plane of the sandwich panels is computed for the sandwich panels comprised of variable thickness core materials and variable thickness skins. The thermomechanical panel properties are compared to the uniform thickness cases and amongst different choices of advanced core materials to provide insight to the tradeoffs that exist between thermal conductivity and mechanical performance of sandwich structures.
引用
收藏
页数:10
相关论文
共 50 条
[31]   Flexural behaviors and failure mechanisms of CFRP sandwich structures with enhanced dual-phase lattice cores [J].
Wang, Yihao ;
Han, Guangchao ;
Liu, Xincheng ;
Ren, Yiru ;
Jiang, Hongyong .
COMPOSITE STRUCTURES, 2024, 328
[32]   Bending behaviors of 3D printed sandwich structures with functionally graded porous lattice cores [J].
Fan, Meiling ;
Zeng, Tao ;
Wu, Rina ;
Cui, Yuhua ;
Xu, Guodong ;
Wang, Xiaohong ;
Cheng, Su ;
Zhao, Jue .
THIN-WALLED STRUCTURES, 2025, 206
[33]   Failure analysis and bending performance of carbon fiber composite sandwich structures with corrugated cores [J].
Yu, Ye ;
Hou, Wen-bin ;
Hu, Ping ;
Yang, Huihui ;
Jia, Xiuxian .
JOURNAL OF SANDWICH STRUCTURES & MATERIALS, 2021, 23 (05) :1427-1452
[34]   Topology optimized design and validation of sandwich structures with pure-lattice/solid-lattice infill by additive manufacturing [J].
Bai, Yingchun ;
Gao, Jiayu ;
Huang, Chengxiang ;
Jiang, Chao ;
Han, Xu .
COMPOSITE STRUCTURES, 2023, 319
[35]   Low velocity impact and flexural performance of sandwich structures with cork and polymer foam cores [J].
Arteiro, Albertino ;
Reis, Ana L. M. A. ;
Novoa, Paulo J. R. O. ;
Silva, Lucas F. M. ;
Zupan, Marc ;
Marques, Antonio T. .
CIENCIA & TECNOLOGIA DOS MATERIAIS, 2013, 25 (02) :79-84
[36]   Dynamic crushing performance of bio-inspired sandwich structures with beetle forewing cores [J].
Lam, Lalin ;
Chen, Wensu ;
Hao, Hong ;
Li, Zhejian ;
San Ha, Ngoc .
INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 2023, 173
[37]   Thermomechanical response of metallic sandwich tubes with prismatic cores considering active cooling [J].
Kai Zhang ;
Zichen Deng ;
Huajiang Ouyang ;
Jiaxi Zhou ;
Bo Wang .
Archive of Applied Mechanics, 2014, 84 :1145-1164
[38]   BENDING OF A SANDWICH ANNULAR PLATE OF VARIABLE THICKNESS [J].
GUPTA, AP ;
SHARMA, KP .
INDIAN JOURNAL OF PURE & APPLIED MATHEMATICS, 1982, 13 (11) :1313-1321
[39]   Thermomechanical response of metallic sandwich tubes with prismatic cores considering active cooling [J].
Zhang, Kai ;
Deng, Zichen ;
Ouyang, Huajiang ;
Zhou, Jiaxi ;
Wang, Bo .
ARCHIVE OF APPLIED MECHANICS, 2014, 84 (08) :1145-1164
[40]   Vibration and buckling of lattice sandwich structures [J].
Zhang, Yi-Hui ;
Gu, Yu ;
Qiu, Xin-Ming ;
Guo, Hai-Cheng ;
Zhao, Han ;
Fang, Dai-Ning .
INTERNATIONAL JOURNAL OF NONLINEAR SCIENCES AND NUMERICAL SIMULATION, 2008, 9 (01) :41-46