A Link between Neutron and Ion Irradiation Hardening for Stainless Austenitic and Ferritic-Martensitic Steels

被引:1
作者
Margolin, Boris [1 ]
Sorokin, Alexander [1 ]
Belyaeva, Lyubov [1 ]
机构
[1] Kurchatov Inst, Natl Res Ctr, Cent Res Inst Struct Mat Prometey, St Petersburg 191015, Russia
关键词
radiation-induced hardening; neutron and ion irradiation; ferritic-martensitic steels; austenitic steels; Vickers microhardness; REACTOR PRESSURE-VESSEL; RADIATION-INDUCED DEGRADATION; MECHANICAL-PROPERTIES; DAMAGE; PREDICTION; EMULATION; INTERNALS; STRESS; WWER;
D O I
10.3390/met14010099
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Radiation hardening is studied for stainless austenitic and ferritic-martensitic chromium steels after ion and neutron irradiation at various temperatures. Austenitic and ferritic-martensitic steels irradiated up to 30 dpa in various nuclear reactors and ion accelerators are studied at various temperatures. A change in Vickers microhardness is used as the radiation hardening parameter. A methodology is developed that allows one to determine the ion irradiation parameters, which ensure the radiation hardening of ferritic-martensitic and austenitic steels, as close as possible to the radiation hardening of the same steels under neutron irradiation. A transferability function is introduced to connect the irradiation temperatures for ion and neutron irradiation that provides the same radiation hardening. On the basis of the obtained experimental data, after ion and neutron irradiation the transferability functions are determined for the investigated austenitic and ferritic-martensitic steels, which connect the temperatures for ion and neutron irradiation and provide the same radiation hardening at a given damage dose.
引用
收藏
页数:35
相关论文
共 50 条
[21]   Performance of 9Cr Ferritic-Martensitic Steels in Flowing Lead for 8000 h [J].
Kosek, Lukas ;
Rozumova, Lucia ;
Hojna, Anna ;
Pazderova, Martina .
JOURNAL OF NUCLEAR MATERIALS, 2021, 554 (554)
[22]   Cyclic deformation and microstructural behaviour of reduced activation ferritic-martensitic steels [J].
Batista, M. N. ;
Alvarez-Armas, I. ;
Giordana, M. F. ;
Herenu, S. ;
Armas, A. F. .
MATERIALS SCIENCE AND TECHNOLOGY, 2014, 30 (14) :1826-1831
[23]   On the Cyclic Behaviour of Fusion Reactor Ferritic-Martensitic Steels at Intermediate Temperatures [J].
Avalos, Martina ;
Alvarez-Armas, Iris ;
Armas, Alberto F. ;
Petersen, Claus .
MATERIALS TESTING, 2009, 51 (06) :376-381
[24]   Complex Hardening of Metastable Stainless Austenitic Steels [J].
Yu. N. Goikhenberg .
Metal Science and Heat Treatment, 2015, 56 :477-482
[25]   Complex Hardening of Metastable Stainless Austenitic Steels [J].
Goikhenberg, Yu N. .
METAL SCIENCE AND HEAT TREATMENT, 2015, 56 (9-10) :477-482
[26]   Creep-Resistant Ferritic-Martensitic Steels for Power Plant Applications [J].
Detrois, Martin ;
Hawk, Jeffrey A. A. ;
Jablonski, Paul D. D. .
JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2024, 33 (01) :1-42
[27]   Modelling and Analysis of the Corrosion Characteristics of Ferritic-Martensitic Steels in Supercritical Water [J].
Li, Yanhui ;
Xu, Tongtong ;
Wang, Shuzhong ;
Fekete, Balazs ;
Yang, Jie ;
Yang, Jianqiao ;
Qiu, Jie ;
Xu, Aoni ;
Wang, Jiaming ;
Xu, Yi ;
Macdonald, Digby D. .
MATERIALS, 2019, 12 (03)
[28]   Dislocation loop evolution under ion irradiation in austenitic stainless steels [J].
Etienne, A. ;
Hernandez-Mayoral, M. ;
Genevois, C. ;
Radiguet, B. ;
Pareige, P. .
JOURNAL OF NUCLEAR MATERIALS, 2010, 400 (01) :56-63
[29]   Recent developments in stainless steels:austenitic,ferritic,duplex [J].
Markus O SPEIDEL ;
Markus DIENER .
BaosteelTechnicalResearch, 2010, 4(S1) (S1) :80-80
[30]   EFFECT OF SEVERE PLASTIC DEFORMATION ON RADIATION HARDENING OF T91 FERRITIC-MARTENSITIC STEEL [J].
Voyevodin, V. N. ;
Tolstolutskaya, G. D. ;
Karpov, S. A. ;
Velikodnyi, A. N. ;
Tikhonovsky, M. A. ;
Kalchenko, A. S. ;
Tolmachova, G. N. ;
Vasilenko, R. L. ;
Kopanets, I. E. .
PROBLEMS OF ATOMIC SCIENCE AND TECHNOLOGY, 2021, (02) :35-42