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Effects of Wear on Stress Corrosion Cracking Initiation Behavior of Alloy 690 Steam Generator Tubes
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Affiliation:

Suzhou Nuclear Power Research Institute, Suzhou 215004, China

Clc Number:

TG146.1+5; TG172.9; TH117.1

Fund Project:

Natural Science Foundation of Jiangsu Province (BK2018117, BK20180210); Scientific Research and Innovation Project of China General Nuclear Power Group (3100129119); National Science and Technology Major Project of China (2019ZX06005003)

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    Abstract:

    Tube bundles are the most critical components of steam generators in pressurized water plants. They are the heat exchange interface between primary and secondary circuits, acting as an important safety barrier to prevent the radioactive leakage. Stress corrosion cracking (SCC) initiation behavior of the worn alloy 690 tubes was investigated by slow strain rate tests (SSRT) in the high-temperature alkaline solution. The scanning electron microscope, electron backscatter diffraction and transmission electron microscope were used to analyze the fretting wear and SCC initiation behavior of alloy 690 tubes. Results show that SSRT specimens show typical transgranular SCC characteristics. The number of initiated cracks and their average depth are increased with increase in the wear degree, suggesting a wear-induced SCC initiation. This may have a relationship with the grooves, delamination, micro-cracks and residual strain layer with tens of micrometers in thickness left on the worn surface. Furthermore, a preliminary analysis on the possible procedure of wear-induced SCC initiation and further propagation during SSRT tests was carried out based on slip-dissolution/oxidation mechanism.

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[Mei Jinna, Han Yaolei, Peng Qunjia, Cai Zhen, Wang Peng, Ti Wenxin. Effects of Wear on Stress Corrosion Cracking Initiation Behavior of Alloy 690 Steam Generator Tubes[J]. Rare Metal Materials and Engineering,2022,51(10):3547~3553.]
DOI:10.12442/j. issn.1002-185X.20210820

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History
  • Received:September 15,2021
  • Revised:October 09,2021
  • Adopted:October 27,2021
  • Online: October 31,2022
  • Published: October 28,2022