A New Polymeric Hybrid Auxetic Structure Additively Manufactured by Fused Filament Fabrication 3D Printing: Machine Learning-Based Energy Absorption Prediction and Optimization

被引:3
作者
Hasanzadeh, Rezgar [1 ]
机构
[1] Department of Mechanical Engineering, Kermanshah University of Technology, Kermanshah
关键词
3D printing; auxetic; machine learning; negative Poisson’s ratio; polymers;
D O I
10.3390/polym16243565
中图分类号
学科分类号
摘要
The significance of this paper is an investigation into the design, development, and optimization of a new polymeric hybrid auxetic structure by additive manufacturing (AM). This work will introduce an innovative class of polymeric hybrid auxetic structure by the integration of an arrow-head unit cell into a missing rib unit cell, which will be fabricated using fused filament fabrication (FFF) technique, that is, one subset of AM. The auxetic performance of the structure is validated through the measurement of its negative Poisson’s ratio, confirming its potential for enhanced energy absorption. A chain of regression, linear, and quadratic polynomial machine learning algorithms are used to predict and optimize the energy absorption capability at variant processing conditions. Amongst them, the polynomial regression model stands out with an R-squared value of 92.46%, reflecting an excellent predictive capability for energy absorption of additively manufactured polymeric hybrid auxetic structure. The optimization technique revealed that the printing speed of 80 mm/s and layer height of 200 µm were the critical values to achieve a maximum amount of energy absorption at 5.954 kJ/m2, achieved at a printing temperature of 244.65 °C. Such results also contribute to the development of AM, since they show not only the potential for energy absorption of polymeric hybrid auxetic structures but also how effective machine learning is in the optimization of the AM process. © 2024 by the author.
引用
收藏
相关论文
共 44 条
[1]  
Joseph A., Mahesh V., Harursampath D., On the application of additive manufacturing methods for auxetic structures: A review, Adv. Manuf, 9, pp. 342-368, (2023)
[2]  
Martin K.A., Burroughs J.F., Riveros G.A., Statistical Analysis of Large Format Additively Manufactured Polyethylene Terephthalate Glycol with 30% Carbon Fiber Tensile Data, Polymers, 16, (2024)
[3]  
Johnston R., Kazanci Z., Analysis of additively manufactured (3D printed) dual-material auxetic structures under compression, Addit. Manuf, 38, (2021)
[4]  
Almesmari A., Baghous N., Ejeh C.J., Barsoum I., Abu Al-Rub R.K., Review of additively manufactured polymeric metamaterials: Design, fabrication, testing and modeling, Polymers, 15, (2023)
[5]  
Nugroho W.T., Dong Y., Pramanik A., Selvan M.C.P., Zhang Z., Ramakrishna S., Additive manufacturing of re-entrant structures: Well-tailored structures, unique properties, modelling approaches and real applications, Addit. Manuf, 78, (2023)
[6]  
Bronder S., Adorna M., Fila T., Koudelka P., Falta J., Jirousek O., Jung A., Hybrid auxetic structures: Structural optimization and mechanical characterization, Adv. Eng. Mater, 23, (2021)
[7]  
Hu Q., Lu G., Tse K.M., Compressive and tensile behaviours of 3D hybrid auxetic-honeycomb lattice structures, Int. J. Mech. Sci, 263, (2024)
[8]  
Zhou J., Gao Q., Wang L., Zheng X., Lv H., Ma Z., Sun H., Wang X., Energy absorption of a novel auxetic structure reinforced by embedding tubes, Eur. J. Mech. A/Solids, 106, (2024)
[9]  
Etemadi E., Zhang M., Gholikord M., Li K., Ho M.M.P., Hu H., Quasi-static and dynamic behavior analysis of 3D CFRP woven laminated composite auxetic structures for load-bearing and energy absorption applications, Compos. Struct, 340, (2024)
[10]  
Zhang J., Lu G., You Z., Large deformation and energy absorption of additively manufactured auxetic materials and structures: A review, Compos. B Eng, 201, (2020)