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dc.contributor.authorGalicia, Monica
dc.date.accessioned2025-11-04T21:25:35Z
dc.date.available2025-11-04T21:25:35Z
dc.date.issued2025-10-04es_MX
dc.identifier.urihttps://cathi.uacj.mx/20.500.11961/31727
dc.description.abstractSilver-based materials are the current benchmark for electrical contacts in circuit breakers due to their high conductivity and corrosion resistance. However, their high cost and limited global availability drive the development of sustainable alternatives. In this context, copper-based composites are attractive because of their lower cost and good conductivity, in addition to the copper capacity to be recycled in almost infinite cycles, but their long-term performance is limited by corrosion processes and wear properties for low-voltage circuit breakers applications. The novelty of this investigation relies on a systematic approach for analyzing the chemical composition and processing of copper–nickel/silicon carbide (Cu–Ni/SiC) composites to establish how particle size and sintering atmosphere can be improved to simultaneously increase electrical and mechanical performance under demanding industrial operating conditions. In this study, Cu-based composites reinforced with 10 wt% SiC and alloyed with up to 3 wt% Ni were produced by powder metallurgy under different argon flow rates (0.9 and 2.5 L min-1) and using two Ni particle sizes (10 μm and 110 μm). Comprehensive characterization included hardness, density, electrical conductivity, wear resistance, and electrochemical testing. The optimal condition (1.5 wt% Ni with 10 μm particles at low argon flow) achieved a surface hardness of 68 HR30T, relative density of 95 %, and electrical conductivity of ~30 IACS%. Specific wear rate improved down to 5.5 × 10􀀀 5 mm3/N⋅m, while corrosion rates remained below 800 mpy. These results show that fine Ni particles at 1.5 wt% under low argon flow uniquely enable a balance between hardness, conductivity, and corrosion resistance, outperforming composites using larger Ni particles. This cost-effective and durable Cu–Ni/SiC metal contacts offer a promising alternative to Ag-based materials in low-voltage circuit breakers applications.es_MX
dc.description.urihttps://www.sciencedirect.com/science/article/pii/S2238785425025621es_MX
dc.language.isoen_USes_MX
dc.relation.ispartofProducto de investigación ICBes_MX
dc.relation.ispartofInstituto de Ciencias Biomédicases_MX
dc.rightsCC0 1.0 Universal*
dc.rights.urihttp://creativecommons.org/publicdomain/zero/1.0/*
dc.subjectCu–Ni/SiC metal contactses_MX
dc.subjectmechanical propertieses_MX
dc.subjectelectrochemical propertieses_MX
dc.subject.otherinfo:eu-repo/classification/cti/2es_MX
dc.titleNovel Cu–Ni/SiC metal contacts with improved mechanical and electrochemical propertieses_MX
dc.typeArtículoes_MX
dcterms.thumbnailhttp://ri.uacj.mx/vufind/thumbnails/rupiicb.pnges_MX
dcrupi.institutoInstituto de Ciencias Biomédicases_MX
dcrupi.cosechableSies_MX
dcrupi.norevista39es_MX
dcrupi.volumen39es_MX
dcrupi.nopagina4192–4203es_MX
dc.identifier.doihttps://doi.org/10.1016/j.jmrt.2025.10.023es_MX
dc.contributor.alumno187330es_MX
dc.journal.titleJournal of Materials Research and Technologyes_MX
dc.contributor.coauthorexternoCruz Cruz, isidro
dc.contributor.coauthorexternoOlvera-Trejo, Daniel
dc.contributor.coauthorexternoMartínez-Romero, Óscar
dc.contributor.coauthorexternoElías-Zúñiga, Alex
dc.contributor.coauthorexternoHernández Maya, Roberto
dcrupi.colaboracionextTecnologico de Monterrey, Institute of Advanced Materials for Sustainable Manufacturing, Av. Eugenio Garza Sada Sur 2501, Monterrey, Nuevo Leónes_MX
dcrupi.colaboracionextSiemens, Research and Development Department, Libramiento Arco Vial Poniente Km 4.2, Santa Catarina, 66350, Nuevo Le´on, Mexicoes_MX
dcrupi.impactosocialnoes_MX
dcrupi.vinculadoproyextnoes_MX
dcrupi.pronacesSeguridad humanaes_MX
dcrupi.vinculadoproyintnoes_MX


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