Institute for Computational Design and Construction (ICD), University of Stuttgart, Stuttgart, Germany.
School of Architecture, University of Waterloo, Cambridge, Ontario, Canada.
Philos Trans A Math Phys Eng Sci. 2020 Mar 20;378(2167):20190445. doi: 10.1098/rsta.2019.0445. Epub 2020 Feb 3.
We developed biomimetic hygro-responsive composite polymer scales inspired by the reversible shape-changes of Bhutan pine () cone seed scales. The synthetic kinematic response is made possible through novel four-dimensional (4D) printing techniques with anisotropic material use, namely copolymers with embedded cellulose fibrils and ABS polymer. Multi-phase motion like the subsequent transversal and longitudinal bending deformation during desiccation of a natural pinecone scale can be structurally programmed into such printed hygromorphs. Both the natural concept generator (Bhutan pinecone scale) and the biomimetic technical structure (4D printed scale) were comparatively investigated as to their displacement and strain over time via three-dimensional digital image correlation methods. Our bioinspired prototypes can be the basis for tailored autonomous and self-sufficient flap and scale structures performing complex consecutive motions for technical applications, e.g. in architecture and soft robotics. This article is part of the theme issue 'Bioinspired materials and surfaces for green science and technology (part 3)'.
我们受不丹松球果鳞片可逆形状变化的启发,开发出了仿生机湿响应复合聚合物鳞片。通过具有各向异性材料使用的新型四维(4D)打印技术,即含有嵌入纤维素纤维的共聚物和 ABS 聚合物,实现了这种合成运动学响应。类似天然松果鳞片干燥过程中的后续横向和纵向弯曲变形等多相运动,可以在这种打印的湿敏形态中进行结构编程。通过三维数字图像相关方法,对天然概念发生器(不丹松球果鳞片)和仿生技术结构(4D 打印鳞片)随时间的位移和应变进行了比较研究。我们的仿生原型可以为定制的自主和自给式襟翼和鳞片结构提供基础,这些结构可以为技术应用(例如建筑和软机器人)执行复杂的连续运动。本文是主题为“绿色科学技术的仿生材料和表面(第 3 部分)”的一部分。