Inverse design of Bézier curve-based mechanical metamaterials with programmable negative thermal expansion and negative Poisson's ratio via a data augmented deep autoencoder

被引:9
|
作者
Cho, Min Woo [1 ]
Ko, Keon [1 ]
Mohammadhosseinzadeh, Majid [1 ]
Kim, Ji Hoon [1 ]
Park, Dong Yong [2 ]
Shin, Da Seul [3 ]
Park, Sang Min [1 ]
机构
[1] Pusan Natl Univ, Sch Mech Engn, 2,Busandaehak Ro 63 Beon Gil, Busan 46241, South Korea
[2] Korea Inst Ind Technol, Adv Mobil Components Grp, 320 Techno Sunhwan Ro, Dalseong Gun 42994, Daegu, South Korea
[3] Korea Inst Mat Sci, Dept Mat Proc, 797 Changwon Daero,5 Seongsan Gu, Chang Won 51508, Gyeongnam, South Korea
基金
新加坡国家研究基金会;
关键词
Thermal expansion;
D O I
10.1039/d4mh00302k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Controlling stress and deformation induced by thermo-mechanical stimulation in high-precision mechanical systems can be achieved by mechanical metamaterials (MM) exhibiting negative thermal expansion (NTE) and negative Poisson's ratio (NPR). However, the inverse design of MM exhibiting a wide range of arbitrary target NTEs and NPRs is a challenging task due to the low design flexibility of analytical methods and parametric studies based on numerical simulation. In this study, we propose B & eacute;zier curve-based programmable chiral mechanical metamaterials (BPCMs) and a deep autoencoder-based inverse design model (DAIM) for the inverse design of BPCMs. Through iterative transfer learning with data augmentation, DAIM can generate BPCMs with a curved rib shape inaccessible with the B & eacute;zier curve, which improves the inverse design performance of the DAIM in the data sparse domain. This approach decreases the mean absolute error of NTE and NPR between the inverse design target and the numerical simulation results of inverse designed BPCMs on the data-sparse domain by 79.25% and 83.33% on average, respectively. A 3D-printed BPCM is validated experimentally and exhibits good coincidence with the target NTE and NPR. Our proposed BPCM and the corresponding inverse design framework enable the inverse design of BPCMs with NTE in the range of -1100 to 0 ppm K(-1 )and NPR in the range of -0.6 to -0.1. Furthermore, programmable thermal deformation modes with a fixed Poisson's ratio are realized by combining various inverse designed BPCM unit cells. BPCMs and the DAIM for their inverse design are expected to improve the mechanical robustness of high-precision mechanical systems through tunable modulation of thermo-mechanical stimulation.
引用
收藏
页码:2615 / 2627
页数:14
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