Lin Wanqing, Yan Yingbo, Zhao Siwei, Qin Huasong, Liu Yilun
Laboratory for Multiscale Mechanics and Medical Science, SV LAB, School of Aerospace, Xi'an Jiaotong University, Xi'an, 710049, China.
Adv Mater. 2024 Nov;36(47):e2406263. doi: 10.1002/adma.202406263. Epub 2024 Oct 3.
Digitization has brought a new era to the world, liberating information from physical media. The material structure-property relation is high-dimensional and nonlinear, and the digitization of structure-property relations may bring unprecedented functional programmability and diversity. Here, a new concept of digital mechanical metamaterial (DMM) is presented, where property design is realized by programming the digital states of the DMM to decouple the design of the structure and property. Transforming the binary stable states of a curved beam to the digital bit, one unit cell of DMM manifests three distinct deformation responses under compression, i.e., compression-twist coupling (CTC), compression-shear coupling (CSC), and pure compression (PC). These deformation modes show notable differences in motion and stiffness, which, by digitally programming a series of DMM, can yield a spectrum of functionalities, including information encryption, stress-strain relation customization, energy absorption in cushioning, effective vibration isolation, and tunable force transmission. This study pioneers a versatile material design paradigm that provides much greater freedom for the property design of intelligent mechanical metamaterials.
数字化给世界带来了一个新时代,将信息从物理介质中解放出来。材料的结构-性能关系是高维且非线性的,而结构-性能关系的数字化可能带来前所未有的功能可编程性和多样性。在此,提出了数字机械超材料(DMM)的新概念,其中通过对DMM的数字状态进行编程来实现性能设计,从而将结构和性能的设计解耦。将弯曲梁的二元稳定状态转换为数字位,DMM的一个单元在压缩下表现出三种不同的变形响应,即压缩-扭转耦合(CTC)、压缩-剪切耦合(CSC)和纯压缩(PC)。这些变形模式在运动和刚度方面表现出显著差异,通过对一系列DMM进行数字编程,可以产生一系列功能,包括信息加密、应力-应变关系定制、缓冲中的能量吸收、有效的隔振以及可调力传递。本研究开创了一种通用的材料设计范式,为智能机械超材料的性能设计提供了更大的自由度。