氢脆
材料科学
脆化
氢
反应堆压力容器
冶金
断裂(地质)
极限抗拉强度
合金
冷却液
开裂
压力容器
应变率
变形(气象学)
复合材料
核工程
腐蚀
化学
热力学
物理
有机化学
工程类
作者
S. Roychowdhury,Hans-Peter Seifert,P. Spätig,Zaiqing Que
标识
DOI:10.1016/j.jnucmat.2016.05.033
摘要
Structural integrity of reactor pressure vessels (RPV) is critical for safety and lifetime. Possible degradation of fracture resistance of RPV steel due to exposure to coolant and hydrogen is a concern. In this study tensile and elastic-plastic fracture mechanics (EPFM) tests in air (hydrogen pre-charged) and EFPM tests in hydrogenated/oxygenated high-temperature water (HTW) was done, using a low-alloy RPV steel. 2–5 wppm hydrogen caused embrittlement in air tensile tests at room temperature (25 °C) and at 288 °C, effects being more significant at 25 °C and in simulated weld coarse grain heat affected zone material. Embrittlement at 288 °C is strain rate dependent and is due to localized plastic deformation. Hydrogen pre-charging/HTW exposure did not deteriorate the fracture resistance at 288 °C in base metal, for investigated loading rate range. Clear change in fracture morphology and deformation structures was observed, similar to that after air tests with hydrogen.
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