Department of Mechanical Engineering, University of New Hampshire, Durham, NH03824, USA.
Sci Rep. 2018 Feb 5;8(1):2397. doi: 10.1038/s41598-018-20795-2.
By combining the two basic deformation mechanisms for auxetic open-cell metamaterials, re-entrant angle and chirality, new hybrid chiral mechanical metamaterials are designed and fabricated via a multi-material 3D printer. Results from mechanical experiments on the 3D printed prototypes and systematic Finite Element (FE) simulations show that the new designs can achieve subsequential cell-opening mechanism under a very large range of overall strains (2.91%-52.6%). Also, the effective stiffness, the Poisson's ratio and the cell-opening rate of the new designs can be tuned in a wide range by tailoring the two independent geometric parameters: the cell size ratio [Formula: see text], and re-entrant angle θ. As an example application, a sequential particle release mechanism of the new designs was also systematically explored. This mechanism has potential application in drug delivery. The present new design concepts can be used to develop new multi-functional smart composites, sensors and/or actuators which are responsive to external load and/or environmental conditions.
通过结合用于各向异性开孔细胞超材料的两种基本变形机制,即负泊松比和手性,通过多材料 3D 打印机设计和制造了新的混合手性机械超材料。对 3D 打印原型的机械实验结果和系统有限元(FE)模拟表明,新设计可以在非常大的总应变范围内(2.91%-52.6%)实现连续的单元开启机制。此外,通过调整两个独立的几何参数,即单元尺寸比[公式:见正文]和内凹角θ,可以在很宽的范围内调节新设计的有效刚度、泊松比和单元开启率。作为一个示例应用,还系统地探索了新设计的顺序粒子释放机制。该机制在药物输送方面具有潜在的应用。本新设计概念可用于开发新的多功能智能复合材料、传感器和/或执行器,这些材料对外部负载和/或环境条件有响应。