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Curved Foldable Tailored Fiber Reinforcements for Moldless Customized Bio-Composite Structures. Proof of Concept: Biomimetic NFRP Stools

Fiber Reinforced Polymers (FRPs) are increasingly popular building materials, mainly because of their high strength to weight ratio. Despite these beneficial properties, these composites are often fabricated in standardized mass production. This research aims to eliminate costly molds in order to si...

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Autores principales: Rihaczek, Gabriel, Klammer, Maximilian, Başnak, Okan, Petrš, Jan, Grisin, Benjamin, Dahy, Hanaa, Carosella, Stefan, Middendorf, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7564925/
https://www.ncbi.nlm.nih.gov/pubmed/32887497
http://dx.doi.org/10.3390/polym12092000
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author Rihaczek, Gabriel
Klammer, Maximilian
Başnak, Okan
Petrš, Jan
Grisin, Benjamin
Dahy, Hanaa
Carosella, Stefan
Middendorf, Peter
author_facet Rihaczek, Gabriel
Klammer, Maximilian
Başnak, Okan
Petrš, Jan
Grisin, Benjamin
Dahy, Hanaa
Carosella, Stefan
Middendorf, Peter
author_sort Rihaczek, Gabriel
collection PubMed
description Fiber Reinforced Polymers (FRPs) are increasingly popular building materials, mainly because of their high strength to weight ratio. Despite these beneficial properties, these composites are often fabricated in standardized mass production. This research aims to eliminate costly molds in order to simplify the fabrication and allow for a higher degree of customization. Complex three-dimensional shapes were instead achieved by a flat reinforcement, which was resin infused and curved folded into a spatial object before hardening. Structural stability was gained through geometries with closed cross-sections. To enable this, the resource-saving additive fabrication technique of tailored fiber placement (TFP) was chosen. This method allowed for precise fibers’ deposition, making a programmed anisotropic behavior of the material possible. Principles regarding the fiber placement were transferred from a biological role-model. Five functional stools were produced as demonstrators to prove the functionality and advantages of the explained system. Partially bio-based materials were applied to fabricate the stool models of natural fiber-reinforced polymer composites (NFRP). A parametric design tool for the global design and fiber layout generation was developed. As a result, varieties of customized components can be produced without increasing the design and manufacturing effort.
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spelling pubmed-75649252020-10-28 Curved Foldable Tailored Fiber Reinforcements for Moldless Customized Bio-Composite Structures. Proof of Concept: Biomimetic NFRP Stools Rihaczek, Gabriel Klammer, Maximilian Başnak, Okan Petrš, Jan Grisin, Benjamin Dahy, Hanaa Carosella, Stefan Middendorf, Peter Polymers (Basel) Article Fiber Reinforced Polymers (FRPs) are increasingly popular building materials, mainly because of their high strength to weight ratio. Despite these beneficial properties, these composites are often fabricated in standardized mass production. This research aims to eliminate costly molds in order to simplify the fabrication and allow for a higher degree of customization. Complex three-dimensional shapes were instead achieved by a flat reinforcement, which was resin infused and curved folded into a spatial object before hardening. Structural stability was gained through geometries with closed cross-sections. To enable this, the resource-saving additive fabrication technique of tailored fiber placement (TFP) was chosen. This method allowed for precise fibers’ deposition, making a programmed anisotropic behavior of the material possible. Principles regarding the fiber placement were transferred from a biological role-model. Five functional stools were produced as demonstrators to prove the functionality and advantages of the explained system. Partially bio-based materials were applied to fabricate the stool models of natural fiber-reinforced polymer composites (NFRP). A parametric design tool for the global design and fiber layout generation was developed. As a result, varieties of customized components can be produced without increasing the design and manufacturing effort. MDPI 2020-09-02 /pmc/articles/PMC7564925/ /pubmed/32887497 http://dx.doi.org/10.3390/polym12092000 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rihaczek, Gabriel
Klammer, Maximilian
Başnak, Okan
Petrš, Jan
Grisin, Benjamin
Dahy, Hanaa
Carosella, Stefan
Middendorf, Peter
Curved Foldable Tailored Fiber Reinforcements for Moldless Customized Bio-Composite Structures. Proof of Concept: Biomimetic NFRP Stools
title Curved Foldable Tailored Fiber Reinforcements for Moldless Customized Bio-Composite Structures. Proof of Concept: Biomimetic NFRP Stools
title_full Curved Foldable Tailored Fiber Reinforcements for Moldless Customized Bio-Composite Structures. Proof of Concept: Biomimetic NFRP Stools
title_fullStr Curved Foldable Tailored Fiber Reinforcements for Moldless Customized Bio-Composite Structures. Proof of Concept: Biomimetic NFRP Stools
title_full_unstemmed Curved Foldable Tailored Fiber Reinforcements for Moldless Customized Bio-Composite Structures. Proof of Concept: Biomimetic NFRP Stools
title_short Curved Foldable Tailored Fiber Reinforcements for Moldless Customized Bio-Composite Structures. Proof of Concept: Biomimetic NFRP Stools
title_sort curved foldable tailored fiber reinforcements for moldless customized bio-composite structures. proof of concept: biomimetic nfrp stools
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7564925/
https://www.ncbi.nlm.nih.gov/pubmed/32887497
http://dx.doi.org/10.3390/polym12092000
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