Laboratory evaluation of a nanostructured lubricating grease for tram runflat tires

dc.contributor.affiliationPérez Giraldo, M., Instituto Tecnológico Metropolitano, Medellin, Colombia
dc.contributor.affiliationVasquez, M., Universidad de Medellín, Medellin, Colombia
dc.contributor.affiliationToro, A., Universidad Nacional de Colombia Sede Medellin, Medellin, Colombia
dc.contributor.affiliationBuitrago-Sierra, R., Instituto Tecnológico Metropolitano, Medellin, Colombia
dc.contributor.affiliationSanta, J.F., Universidad Nacional de Colombia Sede Medellin, Medellin, Colombia
dc.contributor.authorPérez Giraldo M
dc.contributor.authorVasquez M
dc.contributor.authorToro A
dc.contributor.authorBuitrago-Sierra R
dc.contributor.authorSanta J.F.
dc.date.accessioned2024-07-31T21:06:59Z
dc.date.available2024-07-31T21:06:59Z
dc.date.issued2024
dc.descriptionPurpose: This paper aims to develop a stable gel-type lubricant emulating commercial conditions. This encompassed rheological and tribological assessments, alongside field trials on the Medellín tram system. Design/methodology/approach: The gel-type lubricant with graphite and aluminum powder is synthesized. Rheological tests, viscosity measurements and linear viscoelastic regime assessments are conducted. Subsequently, tribological analyses encompassing four-ball and twin disc methods are executed. Finally, real-world testing is performed on the Medellín tram system. Findings: An achieved lubricant met the stipulated criteria, yielding innovative insights into the interaction of graphite and aluminum powder additives under varying tests. Originality/value: Novel findings are unveiled regarding the interaction of graphite and aluminum powder additives in tribological, rheological and real-world trials. In addition, the wear behavior of polymers is observed, along with the potential utilization of such additives in tramway systems. © 2024, Emerald Publishing Limited.
dc.identifier.doi10.1108/ILT-08-2023-0256
dc.identifier.instnameinstname:Universidad de Medellínspa
dc.identifier.issn368792
dc.identifier.reponamereponame:Repositorio Institucional Universidad de Medellínspa
dc.identifier.repourlrepourl:https://repository.udem.edu.co/
dc.identifier.urihttp://hdl.handle.net/11407/8440
dc.language.isoeng
dc.publisherEmerald Publishingspa
dc.publisher.facultyFacultad de Diseñospa
dc.relation.isversionofhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85188119348&doi=10.1108%2fILT-08-2023-0256&partnerID=40&md5=50e7bd744be550dbeb4832de43d4f61c
dc.relation.referencesBhushan, B., Israelachvili, J.N., Landman, U., Nanotribology: friction, wear and lubrication at the atomic scale (1995) Nature, 374 (6523), pp. 607-616
dc.relation.referencesBogdański, S., Brown, M.W., Modelling the three-dimensional behaviour of shallow rolling contact fatigue cracks in rails (2002) Wear, 253 (1-2), pp. 17-25
dc.relation.referencesChen, J., Tribological properties of polytetrafluoroethylene, nano-titanium dioxide, and nano-silicon dioxide as additives in mixed oil-based titanium complex grease (2010) Tribology Letters, 38 (3), pp. 217-224
dc.relation.referencesde Paula, F.H.M., de Freitas, F.A., Nunes, D.G., Iglauer, S., Gramatges, A.P., Nascimento, R.S.V., Lachter, E.R., Alkyl glyceryl ethers as water-based lubricant additives in mixtures with xanthan gum (2022) Colloids and Surfaces A: Physicochemical and engineering Aspects, 634, p. 127881
dc.relation.referencesFan, X., Li, W., Li, H., Zhu, M., Xia, Y., Wang, J., Probing the effect of thickener on tribological properties of lubricating greases (2017) Tribology International, 118, pp. 128-139
dc.relation.referencesFasihi, P., Kendall, O., Abrahams, R., Mutton, P., Lai, Q., Qiu, C., Yan, W., Effect of graphite and MoS2 based solid lubricants for application at wheel-rail interface on the wear mechanism and surface morphology of hypereutectoid rails (2021) Tribology International, 157 (January), p. 106886
dc.relation.referencesGonçalves, D., Marques, E., Graça, B., Campos, A.V., Seabra, J.H.O., Leckner, J., Westbroek, R., Formulation, rheology and thermal aging of polymer greases – Part II: in fluence of the co-thickener content (2015) Tribology International, 87, pp. 171-177
dc.relation.referencesGorbacheva, S.N., Yarmush, Y.M., Ilyin, S.O., Tribology international rheology and tribology of ester-based greases with microcrystalline cellulose and organomodified montmorillonite (2020) Tribology International, 148 (January), p. 106318
dc.relation.referencesHolmberg, K., Andersson, P., Erdemir, A., Global energy consumption due to friction in passenger cars (2012) Tribology International, 47, pp. 221-234
dc.relation.referencesHu, Y., Wang, W.J., Watson, M., Six, K., Al-Maliki, H., Meierhofer, A., Lewis, R., Wear of driving versus driven discs in a twin disc rolling-sliding test (2023) Wear, 512-513, p. 204528
dc.relation.referencesHuang, S., He, A., Yun, J.-H., Xu, X., Jiang, Z., Jiao, S., Huang, H., Synergistic tribological performance of a water based lubricant using graphene oxide and alumina hybrid nanoparticles as additives (2018) Tribology International, 135, pp. 170-180
dc.relation.referencesHutchings, I.M.M., (1992) Tribology: Friction and Wear of engineering Materials, 13. , Butterworth-Heinemann
dc.relation.referencesLeiva-Mateus, J.E., Santa-Marín, J.F., Buitrago-Sierra, R., Mesa Grajales, D.H., Geffroy, E., Rheological and tribological evaluation of friction modifiers for wheel-rail applications (2022) Lubrication Science, 34 (8), pp. 1-10
dc.relation.referencesLi, M., Shi, W., Wang, T., Shi, L., Texture design of microgrooves to improve the tribological properties of wiper blades (2023) Tribology International, 183, p. 108394
dc.relation.referencesLiu, N., Liu, Q., Li, Z., Bai, Y., Sun, Y.W., Li, Z.D., Bao, M.Y., Ma, Y.S., Tribological behavior of plasma-sprayed metal based solid self-lubricating coatings under heavy load (2021) Wear, 486-487 (April), pp. 1-10. , Vols
dc.relation.referencesMahendran, A., Kumar, S.L., Jawahar, R.R., Metrological and tribological characteristics of carbon based nanotube (2020) Materials Today: Proceedings, 45, pp. 6393-6399
dc.relation.referencesMartín-Alfonso, J.E., Martín-Alfonso, M.J., Franco, J.M., Tunable rheological-tribological performance of ‘green’ gel-like dispersions based on sepiolite and castor oil for lubricant applications (2020) Applied Clay Science, 192 (April), p. 105632
dc.relation.referencesMaya-Johnson, S., Felipe Santa, J., Toro, A., Dry and lubricated wear of rail steel under rolling contact fatigue – wear mechanisms and crack growth (2017) Wear, 380-381, pp. 240-250. , Vols
dc.relation.referencesMohamed, A., Ali, S., Osman, T.A., Kamel, B.M., Development and manufacturing an automated lubrication machine test for nano grease (2020) Journal of Materials Research and Technology, 9 (2), pp. 2054-2062
dc.relation.referencesMu, L., Shi, Y., Hua, J., Zhuang, W., Zhu, J., engineering hydrogen bonding interaction and charge separation in bio-polymers for green lubrication (2017) The Journal of Physical Chemistry B, 121 (22), pp. 5669-5678
dc.relation.referencesNiu, M., Qu, J., Gu, L., Synthesis of titanium complex grease and effects of graphene on its tribological properties (2019) Tribology International, 140 (June)
dc.relation.referencesNúñez, N., Martín-Alfonso, J.E., Eugenio, M.E., Valencia, C., Díaz, M.J., Franco, J.M., Preparation and characterization of gel-like dispersions based on cellulosic pulps and castor oil for lubricant applications (2011) Industrial & engineering Chemistry Research, 50 (9), pp. 5618-5627
dc.relation.referencesPan, S., Shen, H., Xu, Q., Luo, J., Hu, M., Surface mercapto engineered magnetic Fe3O4 nanoadsorbent for the removal of mercury from aqueous solutions (2012) Journal of Colloid and Interface Science, 365 (1), pp. 204-212
dc.relation.referencesPanchal, T., Chauhan, D., Thomas, M., Patel, J., Bio based grease a value added product from renewable resources (2015) Industrial Crops and Products, 63, pp. 48-52
dc.relation.referencesPanda, J.N., Bijwe, J., Pandey, R.K., Comparative potential assessment of solid lubricants on the performance of poly aryl ether ketone (PAEK) composites (2017) Wear, 384-385, pp. 192-202. , Vols
dc.relation.referencesPerret, E., Hufenus, R., Insights into strain-induced solid mesophases in melt-spun polymer fibers (2021) Polymer (Guildf), 229 (April), p. 124010
dc.relation.referencesPrabhu, R., Devaraju, A., Recent review of tribology, rheology of biodegradable and FDM compatible polymers (2020) Materials Today: Proceedings, 39, pp. 781-788
dc.relation.referencesRadhika, P., Sobhan, C.B., Chakravorti, S., Improved tribological behavior of lubricating oil dispersed with hybrid nanoparticles of functionalized carbon spheres and graphene nano platelets (2021) Applied Surface Science, 540 (P2), p. 148402
dc.relation.referencesSánchez, M.C., Franco, J.M., Valencia, C., Gallegos, C., Urquiola, F., Urchegui, R., Atomic force microscopy and thermo-rheological characterisation of lubricating greases (2011) Tribology Letters, 41 (2), pp. 463-470
dc.relation.referencesSarkar, P., Modak, N., Sahoo, P., Mechanical and tribological characteristics of aluminium powder filled glass epoxy composites (2018) Materials Today: Proceedings, 5 (2), pp. 5496-5505
dc.relation.referencesShetty, P., Mu, L., Shi, Y., Polyelectrolyte cellulose gel with PEG/water: toward fully green lubricating grease (2019) Carbohydrate Polymers, 230, p. 115670
dc.relation.referencesShetty, P., Mu, L., Shi, Y., Fat mimicking compounds as grease thickeners in poly(ethylene glycol)/water: adopting the solution from history (2020) Journal of Colloid and Interface Science, 578, pp. 619-628
dc.relation.referencesSommer, M., Haas, W., A new approach on grease tribology in sealing technology: influence of the thickener particles (2016) Tribology International, 103, pp. 574-583
dc.relation.referencesSrinivas, V., Chebattina, K.R.R., Pranay, G.V.S., Lakkoju, B., Vandana, V., Tribological properties of polyol ester – commercial motorbike engine oil blends (2022) Journal of King Saud University – engineering Sciences, 34 (1), pp. 57-66
dc.relation.referencesSun, Q., Wang, S., Lv, X., Effect of load on the stick-slip phenomenon and wear behavior of EPDM (2022) Polymer Testing, 115, p. 107737
dc.relation.referencesVélez, J.C., Cornelio, J.A.C., Sierra, R.B., Santa, J.F., Hoyos-Palacio, L.M., Nevshupa, R., Toro, A., Development of a composite friction modifier with carbon nanotubes for applications at the wheel–rail interface (2020) Advanced Composites Letters, 29, pp. 1-8
dc.relation.referencesZhang, S.W., (2004) Tribology of Elastomers, First Edit, , Elsevier B.V, Beijing
dc.relation.referencesZhou, C., Ren, G., Fan, X., Lv, Y., Probing the effect of thickener microstructure on rheological and tribological properties of grease (2022) Journal of Industrial and engineering Chemistry, 111, pp. 51-63
dc.rights.accessrightsinfo:eu-repo/semantics/restrictedAccess
dc.sourceIndustrial Lubrication and Tribology
dc.sourceInd Lubr Tribol
dc.sourceScopus
dc.subjectPEG-based greaseeng
dc.subjectPolymers contacteng
dc.subjectSAOSeng
dc.subjectTwin-disc testeng
dc.subjectWear mechanismeng
dc.subjectAdditiveseng
dc.subjectAluminumeng
dc.subjectGraphiteeng
dc.subjectLubricantseng
dc.subjectTribologyeng
dc.subjectWear of materialseng
dc.subjectAluminium powdereng
dc.subjectGel-typeeng
dc.subjectGraphite powdereng
dc.subjectLaboratory evaluationeng
dc.subjectNano-structuredeng
dc.subjectPEG-based greaseeng
dc.subjectPolymer contacteng
dc.subjectSAOSeng
dc.subjectTwin-disk testseng
dc.subjectWear mechanismseng
dc.subjectViscosity measurementeng
dc.titleLaboratory evaluation of a nanostructured lubricating grease for tram runflat tireseng
dc.typearticle
dc.type.localArtículospa
dc.type.versioninfo:eu-repo/semantics/publishedVersion

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