Materials and Corrosion in Light Water Reactors

被引:0
|
作者
Feron, Damien [1 ]
机构
[1] Univ Paris Saclay, CEA, Serv Rech Corros & Comportement Mat, Gif Sur Yvette, France
来源
CHALLENGES AND RECENT ADVANCEMENTS IN NUCLEAR ENERGY SYSTEMS, SCOPE 2023 | 2024年
关键词
Light Water Reactor; Zirconium; Carbon Steel; Stainless Steel; Nickel Base Alloy; Flow-Accelerated Corrosion; Stress Corrosion Cracking;
D O I
10.1007/978-3-031-64362-0_20
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
Since the beginning of nuclear industry, corrosion issues have been a major concern. Less than two years after start-up, stress corrosion cracking occurred on the stainless steel tubing of the steam generator of the prototype for the Nautilus in USA (1953); more recently, in 2022, several French Pressurized Water Reactors were shut down due to stress corrosion cracking of stainless steels pipes in a safety injection circuit. We propose to underline the complex corrosion mechanisms linked to the nuclear reactor environments (high temperature and high-pressure water environments) and to present briefly the three main corrosion phenomena occurring in Light Water Reactors (LWRs), after a short overview of the LWR materials: (i) general corrosion of zirconium cladding which limits the life-time of fuel elements to generally 3 cycles; (ii) flow-accelerated corrosion (FAC) of carbon steel components, which is the only corrosion phenomenon that has led to several deaths in LWRs; (iii) stress corrosion cracking (SCC) of nickel base alloys ("the Coriou effect") and of stainless steels including irradiation-assisted stress corrosion cracking; SCC of nickel base alloys has led to the replacement of major components like steam generators or pressurized vessel heads. Finally, the corrosion future will be discussed as LWRs are extending their period of operation up to 60 / 80 years, and even more.
引用
收藏
页码:187 / 197
页数:11
相关论文
共 50 条
  • [41] Accident Tolerant Fuel Cladding Materials for Light Water Reactors: Analysis of Neutronic Characteristics
    Aziz, Ferhat
    Rivai, Abu Khalid
    Panitra, Mardiyanto
    Dani, Mohammad
    Suharno, Bambang
    INTERNATIONAL JOURNAL OF TECHNOLOGY, 2024, 15 (03) : 608 - 617
  • [42] Current status of materials development of nuclear fuel cladding tubes for light water reactors
    Duan, Zhengang
    Yang, Huilong
    Satoh, Yuhki
    Murakami, Kenta
    Kano, Sho
    Zhao, Zishou
    Shen, Jingjie
    Abe, Hiroaki
    NUCLEAR ENGINEERING AND DESIGN, 2017, 316 : 131 - 150
  • [43] MATERIALS FOR WATER-COOLED REACTORS
    FRANCIS, WC
    ANNUAL REVIEW OF NUCLEAR SCIENCE, 1968, 18 : 465 - &
  • [44] Development trends in light water reactors
    Fogelstroem, L.
    Simon, M.
    Atw. Atomwirtschaft, Atomtechnik, 1988, 33 (8-7): : 423 - 426
  • [45] LIGHT-WATER REACTORS - REPLY
    GOLAY, MW
    TODREAS, NE
    SCIENTIFIC AMERICAN, 1990, 263 (04) : 10 - 10
  • [46] RECYCLING OF PLUTONIUM IN LIGHT WATER REACTORS
    不详
    ENERGIE NUCLEAIRE PARIS, 1973, 15 (01): : 60 - 63
  • [47] CURRENT STATE OF LIGHT WATER REACTORS
    MATAIX, M
    ENERGIA NUCLEAR, 1968, 12 (56): : 559 - &
  • [48] URANIUM REQUIREMENTS FOR LIGHT WATER REACTORS
    SCHUBERT, AE
    MINING CONGRESS JOURNAL, 1971, 57 (02): : 101 - &
  • [49] ADVANCED LIGHT-WATER REACTORS
    GOLAY, MW
    TODREAS, NE
    SCIENTIFIC AMERICAN, 1990, 262 (04) : 82 - 89
  • [50] Notes on modeling light water reactors
    Johnsen, Gary
    SCIENCE, 2007, 316 (5824) : 542 - 542