Friction characterization when combining laser surface texturing and graphite-based lubricants

The present work analyzes the friction capabilities at room temperature of three types of lubricants (denoted as A, B and C) with a graphite concentration of 5%. To do that, the standard pin-on disc test is deployed to study the variation of the friction coefficient when combining these graphite-bas...

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Main Authors: D. Martinez Krahmer, A.J. Sánchez Egea, D. Celentano, V. Martynenko, M. Cruchaga
Format: Article
Language:English
Published: Elsevier 2020-03-01
Series:Journal of Materials Research and Technology
Online Access:http://www.sciencedirect.com/science/article/pii/S2238785419310750
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spelling doaj-f61bc69b58ea4fd5bd8c10532a30779f2020-11-25T03:18:57ZengElsevierJournal of Materials Research and Technology2238-78542020-03-019217591767Friction characterization when combining laser surface texturing and graphite-based lubricantsD. Martinez Krahmer0A.J. Sánchez Egea1D. Celentano2V. Martynenko3M. Cruchaga4Center for Research and Development in Mechanics, National Institute of Industrial Technology (INTI), Avenida General Paz 5445, 1650 Miguelete, Provincia de Buenos Aires, Argentina; Faculty of Engineering, Universidad Nacional de Lomas de Zamora, Juan XXIII y Camino de Cintura, 1832 Buenos Aires, ArgentinaDepartment of Mechanical Engineering (EEBE), Universitat Politècnica de Catalunya, Av. Eduard Maristany, 16, 08019 Barcelona, Spain; Department of Mechanical and Metallurgical Engineering, Pontificia Universidad Católica de Chile, Av. Vicuña Mackenna 4860, 7820436 Región Metropolitana, Chile; Corresponding author.Department of Mechanical and Metallurgical Engineering, Pontificia Universidad Católica de Chile, Av. Vicuña Mackenna 4860, 7820436 Región Metropolitana, ChileCenter for Research and Development in Mechanics, National Institute of Industrial Technology (INTI), Avenida General Paz 5445, 1650 Miguelete, Provincia de Buenos Aires, Argentina; Faculty of Engineering, Universidad Nacional de Lomas de Zamora, Juan XXIII y Camino de Cintura, 1832 Buenos Aires, ArgentinaDepartment of Mechanical Engineering, University of Santiago (USACH), Av. Bernardo O´Higgins 3363, Santiago, ChileThe present work analyzes the friction capabilities at room temperature of three types of lubricants (denoted as A, B and C) with a graphite concentration of 5%. To do that, the standard pin-on disc test is deployed to study the variation of the friction coefficient when combining these graphite-based lubricants with surfaces made by grinding and different laser surface textures. These lubricants are characterized by measuring the percent of the chemical elements, the average size of the graphite particles and the kinematic viscosity. The experiments show that the lubricant B combined with a higher density of LST presents the lowest friction coefficient of about 0.24. Additionally, assuming a hydrodynamic regime for the textured surfaces, the fluid dynamics simulations carried out as part of the study showed, in agreement with the experimental measurements, the lowest friction coefficient value for a textured surface with the highest dimple density. This seems to be associated to the combined effect of an increase of the hydrodynamic pressure with a weak vortex formation within the dimples, due to the low distortion of the streamlines which, ultimately, attenuates the friction coefficient between the surfaces. Keywords: Laser surface texturing, Graphite-based, Lubricant, Friction coefficient, Pin-On disc, Numerical approachhttp://www.sciencedirect.com/science/article/pii/S2238785419310750
collection DOAJ
language English
format Article
sources DOAJ
author D. Martinez Krahmer
A.J. Sánchez Egea
D. Celentano
V. Martynenko
M. Cruchaga
spellingShingle D. Martinez Krahmer
A.J. Sánchez Egea
D. Celentano
V. Martynenko
M. Cruchaga
Friction characterization when combining laser surface texturing and graphite-based lubricants
Journal of Materials Research and Technology
author_facet D. Martinez Krahmer
A.J. Sánchez Egea
D. Celentano
V. Martynenko
M. Cruchaga
author_sort D. Martinez Krahmer
title Friction characterization when combining laser surface texturing and graphite-based lubricants
title_short Friction characterization when combining laser surface texturing and graphite-based lubricants
title_full Friction characterization when combining laser surface texturing and graphite-based lubricants
title_fullStr Friction characterization when combining laser surface texturing and graphite-based lubricants
title_full_unstemmed Friction characterization when combining laser surface texturing and graphite-based lubricants
title_sort friction characterization when combining laser surface texturing and graphite-based lubricants
publisher Elsevier
series Journal of Materials Research and Technology
issn 2238-7854
publishDate 2020-03-01
description The present work analyzes the friction capabilities at room temperature of three types of lubricants (denoted as A, B and C) with a graphite concentration of 5%. To do that, the standard pin-on disc test is deployed to study the variation of the friction coefficient when combining these graphite-based lubricants with surfaces made by grinding and different laser surface textures. These lubricants are characterized by measuring the percent of the chemical elements, the average size of the graphite particles and the kinematic viscosity. The experiments show that the lubricant B combined with a higher density of LST presents the lowest friction coefficient of about 0.24. Additionally, assuming a hydrodynamic regime for the textured surfaces, the fluid dynamics simulations carried out as part of the study showed, in agreement with the experimental measurements, the lowest friction coefficient value for a textured surface with the highest dimple density. This seems to be associated to the combined effect of an increase of the hydrodynamic pressure with a weak vortex formation within the dimples, due to the low distortion of the streamlines which, ultimately, attenuates the friction coefficient between the surfaces. Keywords: Laser surface texturing, Graphite-based, Lubricant, Friction coefficient, Pin-On disc, Numerical approach
url http://www.sciencedirect.com/science/article/pii/S2238785419310750
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