Inverse-designed 3D sequential metamaterials achieving extreme stiffness

被引:2
作者
Han, Jiacheng [1 ]
Zhai, Xiaoya [1 ]
Zhang, Di [1 ]
Ding, Junhao [2 ]
Ma, Winston Wai Shing [2 ]
Song, Xu [2 ]
Liao, Wei-Hsin [2 ]
Liu, Ligang [1 ]
Wu, Jun [3 ]
Fu, Xiao-Ming [1 ]
机构
[1] Univ Sci & Technol China, Sch Math Sci, Hefei, Anhui, Peoples R China
[2] Chinese Univ Hong Kong, Dept Mech & Automat Engn, Hong Kong, Peoples R China
[3] Delft Univ Technol, Dept Sustainable Design Engn, Delft, Netherlands
基金
中国国家自然科学基金;
关键词
Metamaterials; Sequential; Inverse design; Extreme stiffness; Customization; MECHANICAL METAMATERIALS; LEVEL SET;
D O I
10.1016/j.matdes.2024.113350
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Mechanical metamaterials signify a groundbreaking leap in material science and engineering. The intricate and experience-dependent design process poses a challenge in uncovering architectural material sequences with exceptional mechanical properties. This study introduces inverse-designed 3D sequential metamaterials with outstanding mechanical attributes, achieved through a novel computational framework. The explored sequences based on Schoen's I-graph-wrapped package (IWP) and Schwarz Primitive (Schwarz P) surpass the HashinShtrikman upper bound of Young's modulus at relative densities of 0.24 and 0.43, outperforming previous records. Optimized Body-Centered-Cubic (BCC) truss-based sets outperform traditional ones by 72.7%. This innovative approach can be extended for metamaterial customization, involving the optimization of multidirectional Young's modulus, total stiffness, and the addition of isotropy constraints. The paper explores the characteristics and implications of this innovation, emphasizing the impact of geometric and topological variations on mechanical performance. These metamaterial sequences offer unparalleled adaptability, and hold significant potential in structural engineering and adaptive mechanical systems, opening avenues for technological advancements.
引用
收藏
页数:12
相关论文
共 64 条
  • [1] Effective Anisotropic Elastic and Plastic Yield Properties of Periodic Foams Derived from Triply Periodic Schoen's I-WP Minimal Surface
    Abu Al-Rub, Rashid K.
    Lee, Dong-Wook
    Khan, Kamran A.
    Palazotto, Anthony N.
    [J]. JOURNAL OF ENGINEERING MECHANICS, 2020, 146 (05)
  • [2] Microarchitected Stretching-Dominated Mechanical Metamaterials with Minimal Surface Topologies
    Al-Ketan, Oraib
    Rezgui, Rachid
    Rowshan, Reza
    Du, Huifeng
    Fang, Nicholas X.
    Abu Al-Rub, Rashid K.
    [J]. ADVANCED ENGINEERING MATERIALS, 2018, 20 (09)
  • [3] Composite strut-plate lattice: A high-stiffness design of cellular metamaterial having excellent strength and energy absorption ability
    Baishya, Manash Jyoti
    Sahariah, Bikram Jyoti
    Muthu, Nelson
    Khanikar, Prasenjit
    [J]. MATERIALS TODAY COMMUNICATIONS, 2022, 33
  • [4] Inverse design of nonlinear mechanical metamaterials via video denoising diffusion models
    Bastek, Jan-Hendrik
    Kochmann, Dennis M.
    [J]. NATURE MACHINE INTELLIGENCE, 2023, 5 (12) : 1466 - 1475
  • [5] Bendsoe MP, 1989, Struct Optim, V1, P193, DOI [DOI 10.1007/BF01650949, 10.1007/BF01650949]
  • [6] Mechanical metamaterials at the theoretical limit of isotropic elastic stiffness
    Berger, J. B.
    Wadley, H. N. G.
    Mcmeeking, R. M.
    [J]. NATURE, 2017, 543 (7646) : 533 - +
  • [7] Brakke K. A., 1992, Exp. Math., V1, P141, DOI DOI 10.1080/10586458.1992.10504253
  • [8] Computational discovery of extremal microstructure families
    Chen, Desai
    Skouras, Melina
    Zhu, Bo
    Matusik, Wojciech
    [J]. SCIENCE ADVANCES, 2018, 4 (01):
  • [9] On hybrid cellular materials based on triply periodic minimal surfaces with extreme mechanical properties
    Chen, Zeyao
    Xie, Yi Min
    Wu, Xian
    Wang, Zhe
    Li, Qing
    Zhou, Shiwei
    [J]. MATERIALS & DESIGN, 2019, 183
  • [10] A compatible boundary condition-based topology optimization paradigm for static mechanical cloak design
    Cheng, Xubing
    Liu, Chang
    Zhang, Weisheng
    Tang, Zhiyuan
    Liu, Yongquan
    Tang, Shan
    Du, Zongliang
    Cui, Tianchen
    Guo, Xu
    [J]. EXTREME MECHANICS LETTERS, 2023, 65