Počet záznamů: 1  

Understanding imprint formation, plastic instabilities and hardness evolutions in FCC, BCC and HCP metal surfaces

  1. 1.
    SYSNO ASEP0544732
    Druh ASEPJ - Článek v odborném periodiku
    Zařazení RIVJ - Článek v odborném periodiku
    Poddruh JČlánek ve WOS
    NázevUnderstanding imprint formation, plastic instabilities and hardness evolutions in FCC, BCC and HCP metal surfaces
    Tvůrce(i) Varillas, Javier (UT-L)
    Otčenášek, J. (CZ)
    Torner, J. (ES)
    Alcalá, J. (ES)
    Celkový počet autorů4
    Číslo článku117122
    Zdroj.dok.Acta Materialia. - : Elsevier - ISSN 1359-6454
    Roč. 217, September (2021)
    Poč.str.14 s.
    Forma vydáníTištěná - P
    Jazyk dok.eng - angličtina
    Země vyd.GB - Velká Británie
    Klíč. slovananoindentation ; hardness ; dislocations ; twinning ; crystal plasticity
    Vědní obor RIVJJ - Ostatní materiály
    Obor OECDMechanical engineering
    CEPEF15_003/0000493 GA MŠMT - Ministerstvo školství, mládeže a tělovýchovy
    Způsob publikováníOpen access
    Institucionální podporaUT-L - RVO:61388998
    UT WOS000691327100002
    EID SCOPUS85111040252
    DOI10.1016/j.actamat.2021.117122
    AnotaceNanoindentation experiments in metal surfaces are characterized by the onset of plastic instabilities along with the development of permanent nanoimprints and dense defect networks. This investigation concerns massive molecular dynamics simulations of nanoindentation experiments in FCC, BCC and HCP metals using blunted (spherical) tips of realistic size, and the detailed comparison of the results with experimental measurements. Our findings shed light on the defect processes which dictate the contact resistance to plastic deformation, the development of a transitional stage with abrupt plastic instabilities, and the evolution towards a self-similar steady-state characterized by the plateauing hardness at constant dislocation density . The onset of permanent nanoimprints is governed by stacking fault and nanotwin interlocking, the buildup of nanostructured regions and crystallites throughout the imprint, the cross-slip and cross-kinking of surfaced screw dislocations, and the occurrence of defect remobilization events within the plastic zone. As a result of these mechanisms, the ratio between the hardness and the Young's modulus becomes higher in BCC Ta and Fe, followed by FCC Al, HCP Mg and large stacking fault width FCC Ni and Cu. Finally, when nanoimprint formation is correlated with the uniaxial response of the indented minuscule material volume, the hardness to yield strength ratio, , varies from 7 to 10, which largely exceeds the continuum plasticity bound of 2.8. Our results have general implications to the understanding of indentation size-effects, where the onset of extreme nanoscale hardness values is associated with the occurrence of unique imprint-forming processes under large strain gradients.
    PracovištěÚstav termomechaniky
    KontaktMarie Kajprová, kajprova@it.cas.cz, Tel.: 266 053 154 ; Jana Lahovská, jaja@it.cas.cz, Tel.: 266 053 823
    Rok sběru2022
    Elektronická adresahttps://www.sciencedirect.com/science/article/pii/S1359645421005024
Počet záznamů: 1  

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