论文标题
从3D打印的波带晶格中的形状移动面板
Shape-shifting panel from 3d-printed undulated ribbon lattice
论文作者
论文摘要
根据外部刺激而改变形状的材料为有效且多功能的设计和三维物体的形状开辟了新的前景。在这里,我们介绍了一种新型的微观结构,展示了延伸弯曲耦合(EBC)效应,该效果可以作为用于形状变形面板的基本构建块。它们是用单个材料建造的,作为起伏的丝带网络。使用有限元方法分析了单个和连接的起伏丝带的变形机制,以解释EBC机理的主要特征。对于拟议类的特定微观结构,对完整的弹性刚度张量进行计算,将两尺度均质化与Kirchhoff-love板板理论相结合。然后,根据单位电池的几何参数评估可实现的EBC比率的范围。图案标本是使用商业FFF Ultimaker 3-D打印机制造的,并在有限株中进行机械测试,高达20%。通过点跟踪测量的位移与有限元模拟的预测相匹配,并表明该结构在有限应变处保持其性能。此外,提出了带有点状边界的拉伸测试负载,以突出平面位移中出色。我们设想将这些结构与响应材料结合使用,以促进软机器人,合规系统和可重构结构,作为外部机械电动机,控制系统和电源设备的替代方案。
Materials that change their shape in response to external stimuli opens up new prospects for efficient and versatile design and shaping of three-dimensional objects. Here, we present a novel class of micro-structures exhibiting an extension-bending coupling (EBC) effect, that can be harnessed as an elementary building block for shape-shifting panels. They are built with a single material as a network of undulated ribbons. The deformations mechanisms of both single and connected undulated ribbons are analysed using the finite element method to explain the main features of the EBC mechanism. For a particular micro-structure of the proposed class, the complete elastic stiffness tensor is computed combining two-scale homogenization with Kirchhoff-Love plate theory. The range of achievable EBC ratio is then assessed with respect to the geometric parameters of the unit cell. Patterned specimens are manufactured using a commercial FFF Ultimaker 3-d printer and are mechanically tested at finite strain up to 20%. The displacement measured by point tracking match the predictions from the finite element simulations and indicate that the structure maintain its properties at finite strain. Moreover, a tensile test load with point-like boundary is proposed to highlight exceptional out of plane displacement. We envision these structures to be leveraged in combination with responsive materials for the actuation of soft robots, compliant systems and reconfigurable structures, as alternatives to external mechanical motors, control systems and power devices.