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用于可编程结构形状变化的可持续4D打印元生物复合材料

Sustainable 4D Printed Meta Biocomposite Materials for Programmable Structural Shape Changing.

作者信息

Josselin Melvin, Castro Michael, Di Cesare Noélie, Scarpa Fabrizio, Le Duigou Antoine

机构信息

Université de Bretagne Sud, IRDL UMR CNRS 6027, BIONICS group, Lorient, 56100, France.

LMC2 EA, Université Claude Bernard Lyon 1, Lyon, 7427, France.

出版信息

Adv Mater. 2025 Apr;37(16):e2418656. doi: 10.1002/adma.202418656. Epub 2025 Mar 12.

Abstract

Biological structures provide inspiration for developing advanced materials from sustainable resources, enabling passive structural morphing. Despite an increasing interest for parsimony-oriented innovation, sustainable shape-changing materials based on renewable resources remain underexplored. In this work, the architecture of a single plant fiber cell wall (S, for instance) is simplified to design novel concepts of 4D printed tubular moisture-driven structural actuators, using the hygromorphic properties of continuous flax fiber (cFF) reinforced materials. This new class of bioinspired active materials is referred to as metabiocomposites. Before bioinspired design, the materials are produced with a customized rotary 3D printer, qualified, and tested for sorption behavior. A parametric experimental, analytical, and FEA analysis highlights the programmability of the material through the effects of mesostructural parameters (printing inclination α) and geometric factors (operational length L, inner diameter D, and thickness h) on the actuation authority. The overall performance is a trade-off between rotation and torque, with energy density comparable to that of the source of inspiration: natural fibers cell wall. The potential applications are illustrated through a proof of concept for a meteosensitive rotative structure that transmits motion to an external device, such as a solar tracker.

摘要

生物结构为从可持续资源开发先进材料提供了灵感,实现了被动结构变形。尽管对简约型创新的兴趣与日俱增,但基于可再生资源的可持续形状改变材料仍未得到充分探索。在这项工作中,单一植物纤维细胞壁(例如S)的结构被简化,以利用连续亚麻纤维(cFF)增强材料的吸湿变形特性,设计出4D打印管状湿度驱动结构致动器的新概念。这类新型的受生物启发的活性材料被称为代谢生物复合材料。在进行受生物启发的设计之前,使用定制的旋转3D打印机生产材料,并对其吸附行为进行鉴定和测试。参数化实验、分析和有限元分析突出了材料通过细观结构参数(打印倾斜度α)和几何因素(工作长度L、内径D和厚度h)对驱动能力的影响实现可编程性。整体性能是旋转和扭矩之间的权衡,能量密度与灵感来源:天然纤维细胞壁相当。通过一个对气象敏感的旋转结构的概念验证来说明其潜在应用,该结构将运动传递给外部设备,如太阳能跟踪器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d283/12016741/296cb40190cc/ADMA-37-2418656-g009.jpg

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