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Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation

The current work investigates the auxetic tensile deformation behavior of the inversehoneycomb structure with 5 × 5 cells made of biodegradable poly(butylene adipate-coterephthalate) (PBAT). Fused deposition modeling, an additive manufacturing method, was used to produce such specimens. Residual str...

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Autores principales: Schneider, Yanling, Guski, Vinzenz, Sahin, Ahmet O., Schmauder, Siegfried, Kadkhodapour, Javad, Hufert, Jonas, Grebhardt, Axel, Bonten, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10384392/
https://www.ncbi.nlm.nih.gov/pubmed/37514532
http://dx.doi.org/10.3390/polym15143142
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author Schneider, Yanling
Guski, Vinzenz
Sahin, Ahmet O.
Schmauder, Siegfried
Kadkhodapour, Javad
Hufert, Jonas
Grebhardt, Axel
Bonten, Christian
author_facet Schneider, Yanling
Guski, Vinzenz
Sahin, Ahmet O.
Schmauder, Siegfried
Kadkhodapour, Javad
Hufert, Jonas
Grebhardt, Axel
Bonten, Christian
author_sort Schneider, Yanling
collection PubMed
description The current work investigates the auxetic tensile deformation behavior of the inversehoneycomb structure with 5 × 5 cells made of biodegradable poly(butylene adipate-coterephthalate) (PBAT). Fused deposition modeling, an additive manufacturing method, was used to produce such specimens. Residual stress (RS) and warpage, more or less, always exist in such specimens due to their layer-by-layer fabrication, i.e., repeated heating and cooling. The RS influences the auxetic deformation behavior, but its measurement is challenging due to its very fine structure. Instead, the finite-element (FE)-based process simulation realized using an ABAQUS plug-in numerically predicts the RS and warpage. The predicted warpage shows a negligibly slight deviation compared to the design topology. This process simulation also provides the temperature evolution of a small-volume material, revealing the effects of local cyclic heating and cooling. The achieved RS serves as the initial condition for the FE model used to investigate the auxetic tensile behavior. With the outcomes from FE calculation without consideration of the RS, the effect of the RS on the deformation behavior is discussed for the global force–displacement curve, the structural Poisson’s ratio evolution, the deformed structural status, the stress distribution, and the evolution, where the first three and the warpage are also compared with the experimental results. Furthermore, the FE simulation can easily provide the global stress–strain flow curve with the total stress calculated from the elemental stresses.
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spelling pubmed-103843922023-07-30 Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation Schneider, Yanling Guski, Vinzenz Sahin, Ahmet O. Schmauder, Siegfried Kadkhodapour, Javad Hufert, Jonas Grebhardt, Axel Bonten, Christian Polymers (Basel) Article The current work investigates the auxetic tensile deformation behavior of the inversehoneycomb structure with 5 × 5 cells made of biodegradable poly(butylene adipate-coterephthalate) (PBAT). Fused deposition modeling, an additive manufacturing method, was used to produce such specimens. Residual stress (RS) and warpage, more or less, always exist in such specimens due to their layer-by-layer fabrication, i.e., repeated heating and cooling. The RS influences the auxetic deformation behavior, but its measurement is challenging due to its very fine structure. Instead, the finite-element (FE)-based process simulation realized using an ABAQUS plug-in numerically predicts the RS and warpage. The predicted warpage shows a negligibly slight deviation compared to the design topology. This process simulation also provides the temperature evolution of a small-volume material, revealing the effects of local cyclic heating and cooling. The achieved RS serves as the initial condition for the FE model used to investigate the auxetic tensile behavior. With the outcomes from FE calculation without consideration of the RS, the effect of the RS on the deformation behavior is discussed for the global force–displacement curve, the structural Poisson’s ratio evolution, the deformed structural status, the stress distribution, and the evolution, where the first three and the warpage are also compared with the experimental results. Furthermore, the FE simulation can easily provide the global stress–strain flow curve with the total stress calculated from the elemental stresses. MDPI 2023-07-24 /pmc/articles/PMC10384392/ /pubmed/37514532 http://dx.doi.org/10.3390/polym15143142 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Schneider, Yanling
Guski, Vinzenz
Sahin, Ahmet O.
Schmauder, Siegfried
Kadkhodapour, Javad
Hufert, Jonas
Grebhardt, Axel
Bonten, Christian
Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation
title Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation
title_full Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation
title_fullStr Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation
title_full_unstemmed Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation
title_short Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation
title_sort investigation of auxetic structural deformation behavior of pbat polymers using process and finite element simulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10384392/
https://www.ncbi.nlm.nih.gov/pubmed/37514532
http://dx.doi.org/10.3390/polym15143142
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