Universidad de Burgos RIUBU Principal Default Universidad de Burgos RIUBU Principal Default
  • español
  • English
  • français
  • Deutsch
  • português (Brasil)
  • italiano
Universidad de Burgos RIUBU Principal Default
  • Ayuda
  • Fale conosco
  • Entre em contato
  • Acceso abierto
    • Archivar en RIUBU
    • Acuerdos editoriales para la publicación en acceso abierto
    • Controla tus derechos, facilita el acceso abierto
    • Sobre el acceso abierto y la UBU
    • español
    • English
    • français
    • Deutsch
    • português (Brasil)
    • italiano
    • español
    • English
    • français
    • Deutsch
    • português (Brasil)
    • italiano
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    Navegar

    Todo o repositórioComunidades e ColeçõesPor data do documentoAutoresTítulosAssuntosEsta coleçãoPor data do documentoAutoresTítulosAssuntos

    Minha conta

    EntrarCadastro

    Estatísticas

    Ver as estatísticas de uso

    Compartir

    Ver item 
    •   Página inicial
    • E-Prints
    • Untitled
    • Untitled
    • Artículos GIE
    • Ver item
    •   Página inicial
    • E-Prints
    • Untitled
    • Untitled
    • Artículos GIE
    • Ver item

    Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10259/8920

    Título
    Effect of electrochemical charging on the hydrogen embrittlement susceptibility of a low-alloyed tempered martensitic steel submitted to high internal pressure
    Autor
    Peral, Luis Borja
    Díaz Portugal, AndrésAutoridad UBU Orcid
    Colombo, Chiara
    Alegre Calderón, Jesús ManuelAutoridad UBU Orcid
    Cuesta Segura, Isidoro IvánAutoridad UBU Orcid
    Publicado en
    International Journal of Hydrogen Energy. 2024, V. 63, p. 657-667
    Editorial
    Elsevier
    Fecha de publicación
    2024-04
    ISSN
    0360-3199
    DOI
    10.1016/j.ijhydene.2024.03.034
    Resumo
    The influence of hydrogen on the mechanical behavior of a quenched and tempered 42CrMo4 steel has been evaluated by means of high internal pressure fracture tests carried out on hydrogen precharged notched cylindrical specimens. The notched cylindrical specimens were precharged for 3 h time with 1.2 mA/cm2 in two different aqueous media: 1 M H2SO4 added with 0.25 g/l As2O3 and 3.5% of NaCl solution. Hydraulic fracture tests were performed at different ramps of pressure: 7000, 220, 80, 60 and 30 MPa/h, respectively. Hydrogen damage was more marked when the acid aqueous medium (1 M H2SO4 + 0.25 g/l As2O3) was employed. In this case, a higher hydrogen concentration was introduced, leading to hydrogen decohesion micromechanisms (HEDE) near the notched region, especially when tests were performed at 60 MPa/h. Hydrogen embrittlement susceptibility is discussed in terms of the microstructural singularities and the operative fracture micromechanisms observed in each case.
    Palabras clave
    Hydrogen embrittlement
    Electrochemical permeation
    Cathodic hydrogen precharge
    High internal pressure
    Fracture micromechanisms
    Materia
    Ingeniería mecánica
    Mechanical engineering
    Materiales
    Materials
    Resistencia de materiales
    Strength of materials
    URI
    http://hdl.handle.net/10259/8920
    Versión del editor
    https://doi.org/10.1016/j.ijhydene.2024.03.034
    Aparece en las colecciones
    • Untitled
    • Artículos GIE
    Attribution-NonCommercial-NoDerivatives 4.0 Internacional
    Documento(s) sujeto(s) a una licencia Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 Internacional
    Arquivos deste item
    Nombre:
    Peral-ijhe_2024.pdf
    Tamaño:
    9.620Mb
    Formato:
    Adobe PDF
    Thumbnail
    Visualizar/Abrir

    Métricas

    Citas

    Ver estadísticas de uso

    Exportar

    RISMendeleyRefworksZotero
    • edm
    • marc
    • xoai
    • qdc
    • ore
    • ese
    • dim
    • uketd_dc
    • oai_dc
    • etdms
    • rdf
    • mods
    • mets
    • didl
    • premis
    Mostrar registro completo

    Universidad de Burgos

    Powered by MIT's. DSpace software, Version 5.10