Complex Materials, Department of Materials, ETH Zürich, 8093 Zürich, Switzerland.
Programmable Structures Lab, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907, USA.
Science. 2018 Mar 23;359(6382):1386-1391. doi: 10.1126/science.aap7753.
Origami enables folding of objects into a variety of shapes in arts, engineering, and biological systems. In contrast to well-known paper-folded objects, the wing of the earwig has an exquisite natural folding system that cannot be sufficiently described by current origami models. Such an unusual biological system displays incompatible folding patterns, remains open by a bistable locking mechanism during flight, and self-folds rapidly without muscular actuation. We show that these notable functionalities arise from the protein-rich joints of the earwig wing, which work as extensional and rotational springs between facets. Inspired by this biological wing, we establish a spring origami model that broadens the folding design space of traditional origami and allows for the fabrication of precisely tunable, four-dimensional-printed objects with programmable bioinspired morphing functionalities.
折纸艺术可以将物体折叠成各种形状,应用于艺术、工程和生物系统中。与广为人知的纸折叠物体不同,耳虱的翅膀具有精致的自然折叠系统,当前的折纸模型无法充分描述。这种不寻常的生物系统显示出不兼容的折叠模式,在飞行过程中通过双稳态锁定机构保持打开状态,并在没有肌肉驱动的情况下快速自折叠。我们表明,这些显著的功能来自于耳虱翅膀富含蛋白质的关节,这些关节在关节之间充当拉伸和旋转弹簧。受这种生物翅膀的启发,我们建立了一个弹簧折纸模型,该模型拓宽了传统折纸的折叠设计空间,并允许制造具有可编程仿生变形功能的精确可调的 4D 打印物体。