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    Por favor, use este identificador para citar o enlazar este ítem: https://hdl.handle.net/10259/11298

    Título
    Design and validation of an in-situ hydrogen embrittlement system in a rotary bending fatigue testing machine
    Autor
    Calaf Chica, JoséAutoridad UBU Orcid
    Muñoz Manero, José E.
    García Tárrago, María JoséAutoridad UBU
    Preciado Calzada, MónicaAutoridad UBU Orcid
    Bravo Díez, Pedro MiguelAutoridad UBU Orcid
    Publicado en
    Engineering Failure Analysis. 2025, V. 180, p. 109882
    Editorial
    Elsevier
    Fecha de publicación
    2025-07
    ISSN
    1350-6307
    DOI
    10.1016/j.engfailanal.2025.109882
    Resumo
    Hydrogen is a promising clean energy source, but its integration brings challenges, notably hydrogen embrittlement (HE), which degrades materials used in hydrogen infrastructure. Metals, especially steel, are vulnerable, leading to reduced strength and safety risks. Testing methodologies, including in-situ and ex-situ methods, are crucial to understanding HE. Insitu methods simulate real-time exposure, whereas ex-situ methods focus on post-exposure effects. Rotary bending fatigue tests are particularly interesting as they are cost-effective fatigue machines. This study aims to design and implement an electrochemical cell for in-situ HE testing under cyclic loading in this particular fatigue machine. The study focuses on adapting an electrochemical cell for a rotary bending fatigue machine, testing 42CrMo4 steel. Three key tasks were performed: (i) determining electrochemical parameters for inducing HE through Small Punch Tests (SPTs), (ii) evaluating an electrolyte jet system’s effectiveness, and (iii) designing and validating the electrochemical cell. Electrolytes tested included acid and alkaline solutions, and a novel jetting system was devised to ensure electrolyte coverage during high-speed rotation. The system’s electrical configuration and the cell’s structural adaptations for in-situ hydrogen charging were critical design elements. The tests confirmed the system’s effectiveness in charging the specimen with hydrogen, as evidenced by fatigue life reduction and fracture surface analysis. Specimens precharged with hydrogen, specifically in acidic environments, displayed increased brittleness and premature failure, contrasting with the ductile behavior of non-embrittled specimens. This highlights the system’s potential for future studies on material resistance to hydrogen embrittlement under cyclic loads.
    Palabras clave
    Rotary bending fatigue machine
    Hydrogen
    SPT
    Embrittlement
    Materia
    Hidrógeno
    Hydroge
    Materiales-ensayos
    Materials-Testing
    URI
    https://hdl.handle.net/10259/11298
    Versión del editor
    https://doi.org/10.1016/j.engfailanal.2025.109882
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