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横截面4D打印:受大花捕虫堇启发,利用差异化材料特性扩大自成型结构规模。

Cross-Sectional 4D-Printing: Upscaling Self-Shaping Structures with Differentiated Material Properties Inspired by the Large-Flowered Butterwort ().

作者信息

Sahin Ekin Sila, Cheng Tiffany, Wood Dylan, Tahouni Yasaman, Poppinga Simon, Thielen Marc, Speck Thomas, Menges Achim

机构信息

Institute for Computational Design and Construction (ICD), University of Stuttgart, 70174 Stuttgart, Germany.

Cluster of Excellence IntCDC, University of Stuttgart, 70174 Stuttgart, Germany.

出版信息

Biomimetics (Basel). 2023 Jun 2;8(2):233. doi: 10.3390/biomimetics8020233.

Abstract

Extrusion-based 4D-printing, which is an emerging field within additive manufacturing, has enabled the technical transfer of bioinspired self-shaping mechanisms by emulating the functional morphology of motile plant structures (e.g., leaves, petals, capsules). However, restricted by the layer-by-layer extrusion process, much of the resulting works are simplified abstractions of the pinecone scale's bilayer structure. This paper presents a new method of 4D-printing by rotating the printed axis of the bilayers, which enables the design and fabrication of self-shaping monomaterial systems in cross sections. This research introduces a computational workflow for programming, simulating, and 4D-printing differentiated cross sections with multilayered mechanical properties. Taking inspiration from the large-flowered butterwort (), which shows the formation of depressions on its trap leaves upon contact with prey, we investigate the depression formation of bioinspired 4D-printed test structures by varying each depth layer. Cross-sectional 4D-printing expands the design space of bioinspired bilayer mechanisms beyond the XY plane, allows more control in tuning their self-shaping properties, and paves the way toward large-scale 4D-printed structures with high-resolution programmability.

摘要

基于挤压的4D打印是增材制造领域内的一个新兴领域,它通过模拟能动植物结构(如叶子、花瓣、蒴果)的功能形态,实现了受生物启发的自成型机制的技术转移。然而,受逐层挤压工艺的限制,许多成果只是松果鳞片双层结构的简化抽象。本文提出了一种通过旋转双层结构的打印轴进行4D打印的新方法,该方法能够在横截面上设计和制造自成型单材料系统。本研究引入了一种计算工作流程,用于对具有多层机械性能的差异化横截面进行编程、模拟和4D打印。受大花捕虫堇()的启发,其捕虫叶在与猎物接触时会形成凹陷,我们通过改变每个深度层来研究受生物启发的4D打印测试结构的凹陷形成。横截面4D打印扩展了受生物启发的双层机制在XY平面之外的设计空间,在调整其自成型特性方面提供了更多控制,并为具有高分辨率可编程性的大规模4D打印结构铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/655b/10296012/cb3cc59221d9/biomimetics-08-00233-g001.jpg

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