Thermal各种设计的先进VVER反应堆压力容器用强度增加的钢的阻力

Evgenia A. Kuleshova, Ivan V. Fedotov, Dmitry A. Maltsev, Margarita G. Isaenkova, Olga A. Krymskaya, Roman A. Minushkin
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引用次数: 0

摘要

本文研究了不同设计的先进vver型反应堆压力容器用冶金改良的15Kh2NMFA钢和含镍量增加的钢在长期实验室热暴露后的结构研究和力学试验结果。结果表明,改进的15Kh2NMFA钢和高镍钢经过偏析诱发脆化热处理后,均未出现晶界脆化的迹象。这是由高度的结构分散性和相当低的杂质含量造成的磷在初始状态下极低的晶界偏析来解释的。此外,改进后的15Kh2NMFA钢的屈服强度值没有变化,这与组织研究结果一致。对于高镍钢,屈服强度下降幅度较小,下降幅度为5% ~ 10%,临界脆性温度有规律降低。x射线衍射分析结果表明,高镍钢的力学性能下降是由于回火温度相对较低,因此在长期热暴露过程中可能发生结构恢复。高镍钢在长时间热暴露下,虽然组织恢复,但主要强化碳化物相保持稳定。因此,屈服强度值保持在一个相对较高的水平,超过了现代VVER型容器钢的值,即使在热暴露远远超过先进VVER反应堆的预期运行条件的情况下。在长期热暴露过程中观察到的临界脆性温度的降低有助于提高钢的脆性断裂抗力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal resistance of steels with increased strength properties for pressure vessels of advanced VVER reactors of various designs
The paper considers the results of structural studies and mechanical tests after a long-term thermal exposure of laboratory heats of the metallurgically improved 15Kh2NMFA steel and steel with an increased content of nickel considered as materials for the pressure vessels of advanced VVER-type reactors of various designs. It has been shown that, both for the improved 15Kh2NMFA steel and the high-nickel steel, there are no signs of grain boundary embrittlement after an segregation provoking embrittlement heat treatment. This is explained by the extremely low grain boundary segregation of phosphorus in the initial state caused by a high degree of the structure dispersity as well as by rather a low content of impurities. Besides, no changes have been found in the yield strength value for the improved 15Kh2NMFA steel, which agrees with the structure investigation results. For the high-nickel steel, a tendency towards a minor yield strength decrease by 5 to 10% and a regular reduction of the critical brittleness temperature has been revealed. A decrease in the mechanical properties has been caused by a relatively low temperature of tempering for the high-nickel steel and, accordingly, by the potential occurrence of the structure recovery during long-term thermal exposure, as evidenced by the results of an X-ray diffraction analysis. Despite the structure recovery in the high-nickel steel under the long-term thermal exposure, the main strengthening carbide phases remain stable. Due to this, the yield strength value remains at a relatively high level that exceeds the values for the modern VVER-type vessel steels, even in the case of a thermal exposure much in excess of the expected operating conditions for advanced VVER reactors. The observed decrease of critical brittleness temperature during the long-term thermal exposure contributes to an increase in the steel resistance to brittle fracture.
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