Effect of Carbon on Void Nucleation in Iron

被引:0
|
作者
Shao, Lin [1 ]
机构
[1] Texas A&M Univ, Dept Nucl Engn, Accelerator Lab, College Stn, TX 77843 USA
关键词
void swelling; void nucleation; ion irradiation; neutron irradiation; impurity effect; STRESS-CORROSION CRACKING; SELF-DIFFUSION; VACANCY MIGRATION; DAMAGE; DISLOCATION; SIMULATION; KINETICS; FE;
D O I
10.3390/ma17133375
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The study reports the significance of carbon presence in affecting void nucleation in Fe. Without carbon, void nucleation rates decrease gradually at high temperatures but remain significantly high and almost saturated at low temperatures. With carbon present, even at 1 atomic parts per million, void nucleation rates show a low-temperature cutoff. With higher carbon levels, the nucleation temperature window becomes narrower, the maximum nucleation rate becomes lower, and the temperature of maximum void nucleation shifts to a higher temperature. Fundamentally, this is caused by the change in effective vacancy diffusivity due to the formation of carbon-vacancy complexes. The high sensitivity of void nucleation to carbon comes from the high sensitivity of void nucleation to the vacancy arrival rate in a void. The void nucleation is calculated by first obtaining the effective vacancy diffusivity considering the carbon effect, then calculating the defect concentration and defect flux change considering both carbon effects and pre-existing dislocations, and finally calculating the void nucleation rate based on the recently corrected homogeneous void nucleation theory. The study is important not only in the fundamental understanding of impurity effects in ion/neutron irradiation but also in alloy engineering for judiciously introducing impurities to increase swelling resistance, as well as in the development of simulation and modeling methodologies applicable to other metals.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Shock induced void nucleation during Taylor impact
    Chapman, DJ
    Radford, DD
    Reynolds, M
    Church, PD
    INTERNATIONAL JOURNAL OF FRACTURE, 2005, 134 (01) : 41 - 57
  • [22] Shock induced void nucleation during Taylor impact
    D. J. Chapman
    D. D. Radford
    M. Reynolds
    P. D. Church
    International Journal of Fracture, 2005, 134 : 41 - 57
  • [23] Investigation of void nucleation in Al-Mg sheet
    Chen, Zengtao
    Worswick, Michael J.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2008, 483-84 (1-2 C): : 99 - 101
  • [24] In Situ Observation of Void Nucleation and Growth in a Steel using X-ray Tomography
    Seo, Dowon
    Toda, Hiroyuki
    Kobayashi, Masakazu
    Uesugi, Kentaro
    Takeuchi, Akihisa
    Suzuki, Yoshio
    ISIJ INTERNATIONAL, 2015, 55 (07) : 1474 - 1482
  • [25] Energy variation in diffusive void nucleation induced by electromigration
    Wang, Yuexing
    Yao, Yao
    Long, Zhang
    Keer, Leon
    ACTA MECHANICA SINICA, 2020, 36 (04) : 866 - 872
  • [26] A constitutive model for porous solids taking into account microscale inertia and progressive void nucleation
    Jacques, N.
    Mercier, S.
    Molinari, A.
    MECHANICS OF MATERIALS, 2015, 80 : 311 - 323
  • [27] The dependence on displacement rate and temperature of near-surface void-denuding in self-ion irradiated pure polycrystalline and single-crystal iron
    Li, Yongchang
    French, Aaron
    Hu, Zhihan
    Garner, Frank A.
    Shao, Lin
    JOURNAL OF NUCLEAR MATERIALS, 2024, 599
  • [28] Experimental stress state-dependent void nucleation behavior for advanced high strength steels
    Pathak, N.
    Adrien, J.
    Butcher, C.
    Maire, E.
    Worswick, M.
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2020, 179
  • [29] Nucleation effect of clay on crystallization of polypropylene under carbon dioxide
    Oda, Takafumi
    Kono, Fumiya
    Saito, Hiromu
    POLYMER ENGINEERING AND SCIENCE, 2012, 52 (10) : 2228 - 2236
  • [30] Effect of uniaxial tensile strain on binding energy of hydrogen atoms to vacancy-carbon-hydrogen complexes in α-iron
    Hirayama, Shintaro
    Sato, Koichi
    Kato, Daiji
    Iwakiri, Hirotomo
    Yamaguchi, Masatake
    Watanabe, Yoshiyuki
    Nozawa, Takashi
    NUCLEAR MATERIALS AND ENERGY, 2022, 31