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

Sahin, Ekin Sila ; Cheng, Tiffany ; Wood, Dylan ; Tahouni, Yasaman ; Poppinga, Simon ; Thielen, Marc ; Speck, Thomas ; Menges, Achim (2023)
Cross-Sectional 4D-Printing: Upscaling Self-Shaping Structures with Differentiated Material Properties Inspired by the Large-Flowered Butterwort (Pinguicula grandiflora).
In: Biomimetics, 2023, 8 (2)
doi: 10.26083/tuprints-00024245
Article, Secondary publication, Publisher's Version

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Item Type: Article
Type of entry: Secondary publication
Title: Cross-Sectional 4D-Printing: Upscaling Self-Shaping Structures with Differentiated Material Properties Inspired by the Large-Flowered Butterwort (Pinguicula grandiflora)
Language: English
Date: 10 November 2023
Place of Publication: Darmstadt
Year of primary publication: 2023
Place of primary publication: Basel
Publisher: MDPI
Journal or Publication Title: Biomimetics
Volume of the journal: 8
Issue Number: 2
Collation: 15 Seiten
DOI: 10.26083/tuprints-00024245
Corresponding Links:
Origin: Secondary publication DeepGreen
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 (Pinguicula grandiflora), 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.

Uncontrolled Keywords: additive manufacturing, shape change, material programming, adaptive structures, mechanical metamaterials, functional materials, carnivorous plants, bioinspiration
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-242456
Additional Information:

This article belongs to the Special Issue Editorial Board Members' Collection Series: Biomimetics of Materials and Structures

Classification DDC: 500 Science and mathematics > 570 Life sciences, biology
600 Technology, medicine, applied sciences > 600 Technology
Divisions: 10 Department of Biology > Botanischer Garten
Date Deposited: 10 Nov 2023 15:28
Last Modified: 21 Nov 2023 08:47
SWORD Depositor: Deep Green
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/24245
PPN: 513345299
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