N添加对一种核用超低碳奥氏体不锈钢组织和力学性能的影响

  • 张成学 ,
  • 李艳芬 ,
  • 张家榕 ,
  • 单以银 ,
  • 严伟
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  • 1 中国科学院金属研究所 中国科学院核用材料与安全评价重点实验室  沈阳 110016

    2 中国科学技术大学 材料科学与工程学院  沈阳 110016

收稿日期: 2024-11-05

  修回日期: 2025-01-05

  网络出版日期: 2025-02-13

基金资助

国家自然科学基金项目

Effects of Nitrogen Content on the Microstructure and Mechanical Properties of an Ultralow Carbon Austenitic Stainless Steel for Application in the Nuclear Industry

  • ZHANG Cheng-Hua ,
  • LI Yan-Fen ,
  • ZHANG Jia-Rong ,
  • SHAN Si-Yin ,
  • YAN Wei
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  • 1 CAS Key Laboratory of Nuclear Materials and Safety Assessment, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China 

    2 School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China

Received date: 2024-11-05

  Revised date: 2025-01-05

  Online published: 2025-02-13

Supported by

National Natural Science Foundation of China

摘要

在核工业某些苛刻工况中,要求材料兼具优异的耐晶间腐蚀性能和优良的强韧性。本工作在一种超低碳奥氏体不锈钢中添加N,研究N含量对热轧及固溶态材料的微观组织和力学性能的影响及规律,为钢中合适N含量范围提供参考。结果表明,N含量从0增加至0.5% (质量分数),该奥氏体不锈钢均为单一奥氏体组织,且未出现δ铁素体。同时,随N含量增加,奥氏体钢平均晶粒尺寸呈现逐渐变小的趋势,固溶处理态尤为明显,说明N的添加显著细化了晶粒尺寸。当N含量为0.3%时,钢中开始有析出相出现。当N含量达到0.5%时,析出大量较大尺寸的Cr2N氮化物。力学性能结果表明,随N含量的增加,不管是热轧态还是固溶态,虽然钢的延伸率稍有下降,但显微硬度、抗拉强度和屈服强度均得到明显提升。N含量为0.3%时,固溶处理的奥氏体钢抗拉强度、屈服强度及延伸率分别达到798 MPa、388 MPa及63.3%,具有较优异的拉伸强度及塑韧性。因此,基于强韧性平衡,此超低碳奥氏体不锈钢中N的添加不宜高于约0.3%。

本文引用格式

张成学 , 李艳芬 , 张家榕 , 单以银 , 严伟 . N添加对一种核用超低碳奥氏体不锈钢组织和力学性能的影响[J]. 金属学报, 0 : 0 -0 . DOI: 10.11900/0412.1961.2024.00376

Abstract

Under certain harsh conditions in the nuclear industry, austenitic stainless steels need to resistant the intergranular corrosion and also have high strength and toughness. However, the conventional stainless steels such as 310 and 316 steels cannot meet the service requirements. In this work, it focused on the effects of different nitrogen content on microstructure and mechanical properties for an ultra-low carbon austenitic stainless steel in both hot-rolled and solid-solution-treated conditions, which are expect to provide an important reference for a suitable nitrogen content added in the steel. It reveals that the steels were the single austenitic phase and without any δ ferrite when the nitrogen content increased from 0 to 0.5% by XRD analyses. With the increase in nitrogen content, the average grain size of steels decreased gradually. It indicates that the addition of nitrogen can significantly refine the grain size, especially in the solid-solution-treated conditions. However, when the nitrogen content reached about 0.3%, the precipitates began to formed. When the nitrogen content further increasing to about 0.5%, abundant nitrides proved Cr2N and CrN nitrides with relatively larger size were found. The results of mechanical properties indicate that with the increase in nitrogen content, despite of the slight decrease in elongation, the Vickers-hardness, the ultimate tensile strength and yield strength were significantly improved. When the nitrogen content was about 0.3%, the ultimate tensile strength, yield strength and elongation of the solid-solution-treated steel were 798 MPa, 388 MPa and 63.3%, respectively, exhibiting an excellent balance of strength and ductility. The improvement of the strength was mainly derived from the solid solution strengthening of nitrogen, fine-grain strengthening and small portion of precipitation strengthening. Therefore, based on the balance of mechanical properties, it suggests that the nitrogen content should not be higher than about 0.3% in the ultra-low carbon austenitic stainless steel in this work.
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