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Mechanical Energy Absorption Ability of Titanium-Based Porous Structures Produced by Various Powder Metallurgy Approaches

Porous materials are very efficient in absorbing mechanical energy, for instance, in combined armor, in order to improve the anti-ballistic protection characteristics. In the present study, porous titanium-based structures were manufactured via three different powder metallurgy methods using titaniu...

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Autores principales: Markovsky, Pavlo E., Janiszewski, Jacek, Stasiuk, Oleksandr O., Savvakin, Dmytro G., Oryshych, Denys V., Dziewit, Piotr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180269/
https://www.ncbi.nlm.nih.gov/pubmed/37176411
http://dx.doi.org/10.3390/ma16093530
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author Markovsky, Pavlo E.
Janiszewski, Jacek
Stasiuk, Oleksandr O.
Savvakin, Dmytro G.
Oryshych, Denys V.
Dziewit, Piotr
author_facet Markovsky, Pavlo E.
Janiszewski, Jacek
Stasiuk, Oleksandr O.
Savvakin, Dmytro G.
Oryshych, Denys V.
Dziewit, Piotr
author_sort Markovsky, Pavlo E.
collection PubMed
description Porous materials are very efficient in absorbing mechanical energy, for instance, in combined armor, in order to improve the anti-ballistic protection characteristics. In the present study, porous titanium-based structures were manufactured via three different powder metallurgy methods using titanium hydride (TiH(2)) powder, which provided activated sintering, owing to dehydrogenation. The emission of hydrogen and shrinkage of powder particles on dehydrogenation also added an additional potential to control the sintering process and create desirable porosities. TiH(2) powder was sintered with additions of NaCl or ammonium carbide as pore holding removable agents, while highly porous Ti-Al structures were formed via liquid phase reactive sintering of TiH(2) and Al powders. The microstructures and porosities of sintered dehydrogenated titanium and Ti-Al structures were comparatively studied. Mechanical characteristics were evaluated using compression testing with strain rates varying from quasi-static to high levels. The resonant frequency method was also employed to determine damping parameters and elastic modulus of these materials. All testing methods were aimed at characterizing the energy-absorbing ability of the obtained porous structures. The desired strength, plasticity and energy-absorbing characteristics of porous titanium-based structures were assessed, and the possibilities of their application were also discussed. Based on the obtained results, it was found that porous titanium materials produced with the use of ammonium carbonate showed promising energy absorption properties.
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spelling pubmed-101802692023-05-13 Mechanical Energy Absorption Ability of Titanium-Based Porous Structures Produced by Various Powder Metallurgy Approaches Markovsky, Pavlo E. Janiszewski, Jacek Stasiuk, Oleksandr O. Savvakin, Dmytro G. Oryshych, Denys V. Dziewit, Piotr Materials (Basel) Article Porous materials are very efficient in absorbing mechanical energy, for instance, in combined armor, in order to improve the anti-ballistic protection characteristics. In the present study, porous titanium-based structures were manufactured via three different powder metallurgy methods using titanium hydride (TiH(2)) powder, which provided activated sintering, owing to dehydrogenation. The emission of hydrogen and shrinkage of powder particles on dehydrogenation also added an additional potential to control the sintering process and create desirable porosities. TiH(2) powder was sintered with additions of NaCl or ammonium carbide as pore holding removable agents, while highly porous Ti-Al structures were formed via liquid phase reactive sintering of TiH(2) and Al powders. The microstructures and porosities of sintered dehydrogenated titanium and Ti-Al structures were comparatively studied. Mechanical characteristics were evaluated using compression testing with strain rates varying from quasi-static to high levels. The resonant frequency method was also employed to determine damping parameters and elastic modulus of these materials. All testing methods were aimed at characterizing the energy-absorbing ability of the obtained porous structures. The desired strength, plasticity and energy-absorbing characteristics of porous titanium-based structures were assessed, and the possibilities of their application were also discussed. Based on the obtained results, it was found that porous titanium materials produced with the use of ammonium carbonate showed promising energy absorption properties. MDPI 2023-05-04 /pmc/articles/PMC10180269/ /pubmed/37176411 http://dx.doi.org/10.3390/ma16093530 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
Markovsky, Pavlo E.
Janiszewski, Jacek
Stasiuk, Oleksandr O.
Savvakin, Dmytro G.
Oryshych, Denys V.
Dziewit, Piotr
Mechanical Energy Absorption Ability of Titanium-Based Porous Structures Produced by Various Powder Metallurgy Approaches
title Mechanical Energy Absorption Ability of Titanium-Based Porous Structures Produced by Various Powder Metallurgy Approaches
title_full Mechanical Energy Absorption Ability of Titanium-Based Porous Structures Produced by Various Powder Metallurgy Approaches
title_fullStr Mechanical Energy Absorption Ability of Titanium-Based Porous Structures Produced by Various Powder Metallurgy Approaches
title_full_unstemmed Mechanical Energy Absorption Ability of Titanium-Based Porous Structures Produced by Various Powder Metallurgy Approaches
title_short Mechanical Energy Absorption Ability of Titanium-Based Porous Structures Produced by Various Powder Metallurgy Approaches
title_sort mechanical energy absorption ability of titanium-based porous structures produced by various powder metallurgy approaches
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180269/
https://www.ncbi.nlm.nih.gov/pubmed/37176411
http://dx.doi.org/10.3390/ma16093530
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