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Complex Behavior in the Dynamics of a Polymeric Biocomposite Material—“Liquid Wood”. Experimental and Theoretical Aspects

The purpose of the present paper is to analyze, both experimentally and theoretically, the behavior of the polymeric biocomposite generically known as “liquid wood”, trademarked as Arbofill. The experimental part refers to the mechanical performance in tension and compression, having as finality the...

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Autores principales: Petrescu, Tudor-Cristian, Mihai, Petru, Voordijk, Johannes Theodorus, Nedeff, Valentin, Văideanu, Dorin, Nedeff, Florin, Babor, Traian-Dănuț, Vasincu, Decebal, Agop, Maricel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8747238/
https://www.ncbi.nlm.nih.gov/pubmed/35012087
http://dx.doi.org/10.3390/polym14010064
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author Petrescu, Tudor-Cristian
Mihai, Petru
Voordijk, Johannes Theodorus
Nedeff, Valentin
Văideanu, Dorin
Nedeff, Florin
Babor, Traian-Dănuț
Vasincu, Decebal
Agop, Maricel
author_facet Petrescu, Tudor-Cristian
Mihai, Petru
Voordijk, Johannes Theodorus
Nedeff, Valentin
Văideanu, Dorin
Nedeff, Florin
Babor, Traian-Dănuț
Vasincu, Decebal
Agop, Maricel
author_sort Petrescu, Tudor-Cristian
collection PubMed
description The purpose of the present paper is to analyze, both experimentally and theoretically, the behavior of the polymeric biocomposite generically known as “liquid wood”, trademarked as Arbofill. The experimental part refers to the mechanical performance in tension and compression, having as finality the possibility of using “liquid wood” as a material suitable for the rehabilitation of degraded wooden elements in civil structures (ex. use in historical buildings, monuments etc.). The theoretical part refers to computer simulations regarding the mechanical behavior of “liquid wood” as well as to a theoretical model in the paradigm of motion, which describes the same behavior. This model is based on the hypothesis that “liquid wood” can be assimilated, both structurally and functionally, to a multifractal object, situation in which its entities are described through continuous, non-differentiable curves. Then, descriptions of the behavior of “liquid wood”, both in the Schrödinger-type and in hydrodynamic-type representations at various scale resolutions, become operational. Since in the hydrodynamic-type representation, the constitutive law of “liquid wood” can be highlighted, several operational procedures (Ricatti-type gauge, differential geometry in absolute space etc.) will allow correlations between the present proposed model and the experimental data. The obtained results, both practical (81% bearing capacity in compression and 36% bearing capacity in tension, compared to control samples) and theoretical (validation of material performance in virtual environment simulations, stresses and strains correlations in a theoretical model) indicate that “liquid wood” could be used in the construction industry, as a potential rehabilitation material, but with more development clearly needed.
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spelling pubmed-87472382022-01-11 Complex Behavior in the Dynamics of a Polymeric Biocomposite Material—“Liquid Wood”. Experimental and Theoretical Aspects Petrescu, Tudor-Cristian Mihai, Petru Voordijk, Johannes Theodorus Nedeff, Valentin Văideanu, Dorin Nedeff, Florin Babor, Traian-Dănuț Vasincu, Decebal Agop, Maricel Polymers (Basel) Article The purpose of the present paper is to analyze, both experimentally and theoretically, the behavior of the polymeric biocomposite generically known as “liquid wood”, trademarked as Arbofill. The experimental part refers to the mechanical performance in tension and compression, having as finality the possibility of using “liquid wood” as a material suitable for the rehabilitation of degraded wooden elements in civil structures (ex. use in historical buildings, monuments etc.). The theoretical part refers to computer simulations regarding the mechanical behavior of “liquid wood” as well as to a theoretical model in the paradigm of motion, which describes the same behavior. This model is based on the hypothesis that “liquid wood” can be assimilated, both structurally and functionally, to a multifractal object, situation in which its entities are described through continuous, non-differentiable curves. Then, descriptions of the behavior of “liquid wood”, both in the Schrödinger-type and in hydrodynamic-type representations at various scale resolutions, become operational. Since in the hydrodynamic-type representation, the constitutive law of “liquid wood” can be highlighted, several operational procedures (Ricatti-type gauge, differential geometry in absolute space etc.) will allow correlations between the present proposed model and the experimental data. The obtained results, both practical (81% bearing capacity in compression and 36% bearing capacity in tension, compared to control samples) and theoretical (validation of material performance in virtual environment simulations, stresses and strains correlations in a theoretical model) indicate that “liquid wood” could be used in the construction industry, as a potential rehabilitation material, but with more development clearly needed. MDPI 2021-12-24 /pmc/articles/PMC8747238/ /pubmed/35012087 http://dx.doi.org/10.3390/polym14010064 Text en © 2021 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
Petrescu, Tudor-Cristian
Mihai, Petru
Voordijk, Johannes Theodorus
Nedeff, Valentin
Văideanu, Dorin
Nedeff, Florin
Babor, Traian-Dănuț
Vasincu, Decebal
Agop, Maricel
Complex Behavior in the Dynamics of a Polymeric Biocomposite Material—“Liquid Wood”. Experimental and Theoretical Aspects
title Complex Behavior in the Dynamics of a Polymeric Biocomposite Material—“Liquid Wood”. Experimental and Theoretical Aspects
title_full Complex Behavior in the Dynamics of a Polymeric Biocomposite Material—“Liquid Wood”. Experimental and Theoretical Aspects
title_fullStr Complex Behavior in the Dynamics of a Polymeric Biocomposite Material—“Liquid Wood”. Experimental and Theoretical Aspects
title_full_unstemmed Complex Behavior in the Dynamics of a Polymeric Biocomposite Material—“Liquid Wood”. Experimental and Theoretical Aspects
title_short Complex Behavior in the Dynamics of a Polymeric Biocomposite Material—“Liquid Wood”. Experimental and Theoretical Aspects
title_sort complex behavior in the dynamics of a polymeric biocomposite material—“liquid wood”. experimental and theoretical aspects
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8747238/
https://www.ncbi.nlm.nih.gov/pubmed/35012087
http://dx.doi.org/10.3390/polym14010064
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