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首页> 外文期刊>Nuclear Engineering and Design >The experience and analysis of vent pipe PWSCC (primary water stress corrosion cracking) in PWR vessel head penetration
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The experience and analysis of vent pipe PWSCC (primary water stress corrosion cracking) in PWR vessel head penetration

机译:压水堆船头穿入时排气管PWSCC(一次水应力腐蚀开裂)的经验与分析

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摘要

One of the Korea pressurized water reactors (PWRs), Yong-Gwang Unit 3 (YGU3), has experienced a boron leakage near the vent line pipe (3/4in.) nozzle of pressure vessel head penetration on February 25,2010, during its 12th annual overhaul. The amount of boric acid leakage was evaluated and estimated to be 31.81 which had leaked to the inside containment. Using the non-destructive testing such as MRPC ECT and UT, two cracks were confirmed near the nozzle welding part. The vent pipe was Alloy 600 and installed in carbon steel head by J groove welding (Alloy 182 buttering and Alloy 182/82 welding). Alloy 600 was known as a sensitive material for PWSCC (primary water stress corrosion cracking). To find the root cause of the cracks, we did additional non-destructive test for crack sizing and destructive test for crack morphology. And stress analysis and operating environmental analysis were also performed. Through the non-destructive test, destructive test, residual stress analysis and operating environment analysis, it was confirmed that the cracks of YGU3 were related with the boric acid leakage by the axial PWSCC. Especially, the high residual stress seemed to have one of the biggest effects on PWSCC, and the random Cr carbide precipitates could be an important factor for inter-granular crack growth. On the other hand, the YGU3 was re-started after performing 5 action items (including the integrity assessment of nozzle repair).
机译:2010年2月25日,韩国压水堆(PWR)之一的光广3号机组(YGU3)在压力容器头部穿透的排气管(3/4英寸)喷嘴附近发生硼泄漏。第十二届年度大修。硼酸泄漏量被评估并估计为31.81,其已经泄漏到内部安全壳中。使用MRPC ECT和UT等无损检测,在喷嘴焊接部位附近发现了两个裂纹。排气管为600合金,通过J槽焊接(合金182黄油和182/82合金焊接)安装在碳钢头中。合金600被认为是PWSCC(主要的水应力腐蚀开裂)的敏感材料。为了找到裂纹的根本原因,我们对裂纹尺寸进行了附加的非破坏性测试,并对裂纹形态进行了破坏性测试。并进行了压力分析和操作环境分析。通过无损检测,破坏性测试,残余应力分析和工作环境分析,确定了轴向PWSCC引起的YGU3裂纹与硼酸泄漏有关。特别是,高残余应力似乎对PWSCC具有最大的影响,并且无定形的Cr碳化物沉淀可能是晶间裂纹扩展的重要因素。另一方面,在执行5个动作项目(包括喷嘴维修的完整性评估)后,YGU3重新启动。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2014年第4期|291-298|共8页
  • 作者单位

    Korea Institute of Nuclear Safety, Republic of Korea;

    Korea Atomic Energy Research Institute, Republic of Korea;

    Korea Atomic Energy Research Institute, Republic of Korea;

    Korea Atomic Energy Research Institute, Republic of Korea;

    Sunchon National University, Republic of Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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