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Experimental—FEM Study on Effect of Tribological Load Conditions on Wear Resistance of Three-Component High-Strength Solid-Lubricant PI-Based Composites

The structure, mechanical and tribological properties of the polyimide-based composites reinforced with chopped carbon fibers (CCF) and loaded with solid-lubricant commercially available fillers of various natures were investigated. The metal- and ceramic counterparts were employed for tribological...

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Autores principales: Panin, Sergey V., Luo, Jiangkun, Buslovich, Dmitry G., Alexenko, Vladislav O., Kornienko, Lyudmila A., Bochkareva, Svetlana A., Byakov, Anton V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8399414/
https://www.ncbi.nlm.nih.gov/pubmed/34451375
http://dx.doi.org/10.3390/polym13162837
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author Panin, Sergey V.
Luo, Jiangkun
Buslovich, Dmitry G.
Alexenko, Vladislav O.
Kornienko, Lyudmila A.
Bochkareva, Svetlana A.
Byakov, Anton V.
author_facet Panin, Sergey V.
Luo, Jiangkun
Buslovich, Dmitry G.
Alexenko, Vladislav O.
Kornienko, Lyudmila A.
Bochkareva, Svetlana A.
Byakov, Anton V.
author_sort Panin, Sergey V.
collection PubMed
description The structure, mechanical and tribological properties of the polyimide-based composites reinforced with chopped carbon fibers (CCF) and loaded with solid-lubricant commercially available fillers of various natures were investigated. The metal- and ceramic counterparts were employed for tribological testing. Micron sized powders of PTFE, colloidal graphite and molybdenum disulfide were used for solid lubrication. It was shown that elastic modulus was enhanced by up to 2.5 times, while ultimate tensile strength was increased by up 1.5 times. The scheme and tribological loading conditions exerted the great effect on wear resistance of the composites. In the tribological tests by the ‘pin-on-disk’ scheme, wear rate decreased down to ~290 times for the metal-polymer tribological contact and to ~285 times for the ceramic-polymer one (compared to those for neat PI). In the tribological tests against the rougher counterpart (R(a)~0.2 μm, the ‘block-on-ring’ scheme) three-component composites with both graphite and MoS(2) exhibited high wear resistance. Under the “block-on-ring” scheme, the possibility of the transfer film formation was minimized, since the large-area counterpart slid against the ‘non-renewable’ surface of the polymer composite (at a ‘shortage’ of solid lubricant particles). On the other hand, graphite and MoS(2) particles served as reinforcing inclusions. Finally, numerical simulation of the tribological test according to the ‘block-on-ring’ scheme was carried out. Within the framework of the implemented model, the counterpart roughness level exerted the significantly greater effect on wear rate in contrast to the porosity.
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spelling pubmed-83994142021-08-29 Experimental—FEM Study on Effect of Tribological Load Conditions on Wear Resistance of Three-Component High-Strength Solid-Lubricant PI-Based Composites Panin, Sergey V. Luo, Jiangkun Buslovich, Dmitry G. Alexenko, Vladislav O. Kornienko, Lyudmila A. Bochkareva, Svetlana A. Byakov, Anton V. Polymers (Basel) Article The structure, mechanical and tribological properties of the polyimide-based composites reinforced with chopped carbon fibers (CCF) and loaded with solid-lubricant commercially available fillers of various natures were investigated. The metal- and ceramic counterparts were employed for tribological testing. Micron sized powders of PTFE, colloidal graphite and molybdenum disulfide were used for solid lubrication. It was shown that elastic modulus was enhanced by up to 2.5 times, while ultimate tensile strength was increased by up 1.5 times. The scheme and tribological loading conditions exerted the great effect on wear resistance of the composites. In the tribological tests by the ‘pin-on-disk’ scheme, wear rate decreased down to ~290 times for the metal-polymer tribological contact and to ~285 times for the ceramic-polymer one (compared to those for neat PI). In the tribological tests against the rougher counterpart (R(a)~0.2 μm, the ‘block-on-ring’ scheme) three-component composites with both graphite and MoS(2) exhibited high wear resistance. Under the “block-on-ring” scheme, the possibility of the transfer film formation was minimized, since the large-area counterpart slid against the ‘non-renewable’ surface of the polymer composite (at a ‘shortage’ of solid lubricant particles). On the other hand, graphite and MoS(2) particles served as reinforcing inclusions. Finally, numerical simulation of the tribological test according to the ‘block-on-ring’ scheme was carried out. Within the framework of the implemented model, the counterpart roughness level exerted the significantly greater effect on wear rate in contrast to the porosity. MDPI 2021-08-23 /pmc/articles/PMC8399414/ /pubmed/34451375 http://dx.doi.org/10.3390/polym13162837 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
Panin, Sergey V.
Luo, Jiangkun
Buslovich, Dmitry G.
Alexenko, Vladislav O.
Kornienko, Lyudmila A.
Bochkareva, Svetlana A.
Byakov, Anton V.
Experimental—FEM Study on Effect of Tribological Load Conditions on Wear Resistance of Three-Component High-Strength Solid-Lubricant PI-Based Composites
title Experimental—FEM Study on Effect of Tribological Load Conditions on Wear Resistance of Three-Component High-Strength Solid-Lubricant PI-Based Composites
title_full Experimental—FEM Study on Effect of Tribological Load Conditions on Wear Resistance of Three-Component High-Strength Solid-Lubricant PI-Based Composites
title_fullStr Experimental—FEM Study on Effect of Tribological Load Conditions on Wear Resistance of Three-Component High-Strength Solid-Lubricant PI-Based Composites
title_full_unstemmed Experimental—FEM Study on Effect of Tribological Load Conditions on Wear Resistance of Three-Component High-Strength Solid-Lubricant PI-Based Composites
title_short Experimental—FEM Study on Effect of Tribological Load Conditions on Wear Resistance of Three-Component High-Strength Solid-Lubricant PI-Based Composites
title_sort experimental—fem study on effect of tribological load conditions on wear resistance of three-component high-strength solid-lubricant pi-based composites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8399414/
https://www.ncbi.nlm.nih.gov/pubmed/34451375
http://dx.doi.org/10.3390/polym13162837
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