Mapping defects during phase transformation in high Cr content NiCr solid-solution through positron trapping

被引:1
作者
Maheshwari, Priya [1 ,2 ]
Mukherjee, S. [1 ]
Pujari, P. K. [1 ,2 ]
机构
[1] Bhabha Atom Res Ctr, Radiochem Div, Mumbai, Maharashtra, India
[2] Homi Bhabha Natl Inst, Mumbai, Maharashtra, India
关键词
Positron annihilation spectroscopy; Defects; Dislocations; Vacancy-solute complex; Precipitation; Solid-solution; DEFORMED POLYCRYSTALLINE NI; MICROSTRUCTURE EVOLUTION; MECHANICAL-PROPERTIES; LATTICE-DEFECTS; HIGH-STRENGTH; AL; ANNIHILATION; ALLOYS; CU; PRECIPITATION;
D O I
10.1016/j.jallcom.2022.164449
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
Understanding the role of point defects towards hardening -and influence on secondary phase evolution demands a systematic investigation of defects during aging. In the present work, we investigate defects present/evolved during thermal aging in high Cr content NiCr solid-solution using positron annihilation lifetime and coincidence Doppler broadening spectroscopy. Thermal aging at the studied temperature results in phase transformation of the matrix primarily by discontinuous precipitation leading to Cr precipitation as revealed from field-effect scanning electron microscopy. Positron annihilation results reveal that non-equilibrium thermal (excess) vacancies are predominant defects in the studied alloy. These vacancies are retained in the alloy due to the formation of vacancy-solute complex. During solutionization treatment, the excess vacancies are largely recovered attaining an equilibrium vacancy concentration. On the other hand, excess vacancies are not recovered during thermal aging and stable up to 24 h aging period. In addition to vacancy-solute complex, dislocations are evolved at higher aging times and suggested to be present at the interface of Cr precipitate and matrix. Under the consideration of positron trapping model, the estimated atomic concentration of vacancies (vacancy-solute complex) in the phase transformed NiCr is ~ 10(-5) and the dislocation density is ~ 4 x 10(9 )cm(-2). (C) 2022 Elsevier B.V. All rights reserved.
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页数:8
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共 75 条
  • [1] Grain boundary segregation induced strengthening of an ultrafine-grained austenitic stainless steel
    Abramova, M. M.
    Enikeev, N. A.
    Valiev, R. Z.
    Etienne, A.
    Radiguet, B.
    Ivanisenko, Y.
    Sauvage, X.
    [J]. MATERIALS LETTERS, 2014, 136 : 349 - 352
  • [2] Segregation-Assisted Plasticity in Ni-Based Superalloys
    Barba, D.
    Smith, T. M.
    Miao, J.
    Mills, M. J.
    Reed, R. C.
    [J]. METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2018, 49A (09): : 4173 - 4185
  • [3] Bharathi A.., 1983, MAT SCI FORUM, V3, P379
  • [4] Transforming solid-state precipitates via excess vacancies
    Bourgeois, Laure
    Zhang, Yong
    Zhang, Zezhong
    Chen, Yiqiang
    Medhekar, Nikhil, V
    [J]. NATURE COMMUNICATIONS, 2020, 11 (01)
  • [5] Brown L.M., 1971, Applied Science, V9
  • [6] Annealing process in quenched Al-Sn alloys:: A positron annihilation study -: art. no. 064106
    Cízek, J
    Melikhova, O
    Procházka, I
    Kuriplach, J
    Stulíková, I
    Vostry, P
    Faltus, J
    [J]. PHYSICAL REVIEW B, 2005, 71 (06)
  • [7] Characterization of lattice defects in metallic materials by positron annihilation spectroscopy: A review
    Cizek, J.
    [J]. JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2018, 34 (04) : 577 - 598
  • [8] Strengthening in rapidly solidified age hardened Cu-Cr and Cu-Cr-Zr alloys
    Correia, JB
    Davies, HA
    Sellars, CM
    [J]. ACTA MATERIALIA, 1997, 45 (01) : 177 - 190
  • [9] The 3d-shell electrons in NiAl-based alloys containing Cr and Co studied by positron annihilation
    Deng, W
    Huang, YY
    Brusa, RS
    Karwasz, GP
    Zecca, A
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2005, 386 (1-2) : 103 - 106
  • [10] IMPURITY-INDUCED VACANCY CLUSTERING IN COLD-WORKED NICKEL
    DLUBEK, G
    BRUMMER, O
    MEYENDORF, N
    HAUTOJARVI, P
    VEHANEN, A
    YLIKAUPPILA, J
    [J]. JOURNAL OF PHYSICS F-METAL PHYSICS, 1979, 9 (10): : 1961 - &