CZ锆合金的水化学及温度适应性研究

IF 0.4 Q4 NUCLEAR SCIENCE & TECHNOLOGY Journal of Nuclear Fuel Cycle and Waste Technology Pub Date : 2022-08-08 DOI:10.1115/icone29-93820
Hansen Chen, Changyuan Gao, Liu-tao Chen, Xu Wang, J. Tan
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引用次数: 0

摘要

锆合金的腐蚀行为与一次回路的水化学性质和工作温度密切相关。操作温度、Li浓度和pH值的升高都会对锆合金的腐蚀行为产生显著的负面影响。在不同水化学条件(Li浓度为3.5ppm/7.2、4.5ppm/7.2、4.5ppm/7.5、7ppm/7.5)和温度条件(360°C、400°C、430°C、450°C、500°C)下,对CZ和Zr-4合金进行了热压罐腐蚀试验。获得不同温度和水化学条件对不同锆合金腐蚀速率的影响,获得不同腐蚀阶段不同样品的氧化膜厚度和氢含量信息,研究锆合金的温度和水化学适应性。实验结果表明,在430℃以上,Zr-4合金发生断裂腐蚀和结核腐蚀,氧化膜厚度和吸氢量显著增加。而在360 ~ 500℃范围内,CZ合金的腐蚀规律保持不变,没有断裂腐蚀和结核腐蚀。腐蚀速率与温度的关系符合Arrhenius公式,具有较好的温度适应性。在较恶劣的水化学条件下(Li浓度为4.5 ppm, pH300为7.5 ppm),各种锆合金的腐蚀速率没有明显增加,也没有出现结核腐蚀现象。氧化膜厚度和吸氢能力增加不明显,表现出较好的水化学适应性。
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Study on Water Chemistry and Temperature Adaptability of CZ Zirconium Alloy
The corrosion behavior of zirconium alloys is closely related to the water chemistry and operating temperature of the primary circuit. The increase of operating temperature, Li concentration and pH value will have a significant negative impact on the corrosion behavior of zirconium alloy. Autoclave corrosion tests of CZ and Zr-4 alloys were carried out under different water chemistry conditions (Li concentration and pH300 were 3.5ppm/7.2, 4.5ppm/7.2, 4.5ppm/7.5, 7ppm/7.5 respectively) and temperature conditions (360 °C, 400 °C, 430 °C, 450 °C, 500 °C). The effects of different temperature and water chemistry conditions on the corrosion rate of different zirconium alloys were obtained and the information of oxide film thickness and hydrogen content of different samples in different corrosion stages were obtained to study the temperature and water chemistry adaptability of zirconium alloys. The experimental results show that breakaway corrosion and nodule corrosion occur in Zr-4 alloy above 430 °C, and the thickness of oxide film and hydrogen absorption increase significantly. However, the corrosion law of CZ alloys keep the same from 360 °C to 500 °C, and there is no breakaway corrosion or nodule corrosion. The relationships between corrosion rate and temperature accord with Arrhenius formula, showing good temperature adaptability. Under relatively severe water chemistry conditions (Li concentration and pH300 are 4.5 ppm and 7.5 respectively), the corrosion rate of various zirconium alloys does not increase obviously, and there is no nodule corrosion phenomenon. The increase of oxide film thickness and hydrogen absorption capacity is not obvious, showing good water chemistry adaptability.
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来源期刊
CiteScore
0.80
自引率
25.00%
发文量
35
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