Slesarenko Viacheslav
Freiburg Institute for Advanced Studies, 79104 Freiburg im Breisgau, Germany.
Cluster of Excellence livMatS @ FIT-Freiburg Center for Interactive Materials and Bioinspired Technologies, University of Freiburg, 79110 Freiburg im Breisgau, Germany.
Materials (Basel). 2020 Mar 13;13(6):1313. doi: 10.3390/ma13061313.
The design space of mechanical metamaterials can be drastically enriched by the employment of non-mechanical interactions between unit cells. Here, the mechanical behavior of planar metamaterials consisting of rotating squares is controlled through the periodic embedment of modified elementary cells with attractive and repulsive configurations of the magnets. The proposed design of mechanical metamaterials produced by three-dimensional printing enables the efficient and quick reprogramming of their mechanical properties through the insertion of the magnets into various locations within the metamaterial. Experimental and numerical studies reveal that under equibiaxial compression various mechanical characteristics, such as buckling strain and post-buckling stiffness, can be finely tuned through the rational placement of the magnets. Moreover, this strategy is shown to be efficient in introducing bistability into the metamaterial with an initially single equilibrium state.
通过利用晶胞之间的非机械相互作用,可以极大地丰富机械超材料的设计空间。在此,由旋转正方形组成的平面超材料的力学行为通过周期性嵌入具有磁体吸引和排斥构型的改性基本单元来控制。所提出的通过三维打印制造机械超材料的设计,能够通过将磁体插入超材料内的不同位置,高效快速地重新编程其力学性能。实验和数值研究表明,在等双轴压缩下,通过磁体的合理放置,可以精细调节各种力学特性,如屈曲应变和屈曲后刚度。此外,该策略在将具有初始单一平衡状态的超材料引入双稳态方面被证明是有效的。