新型铸造Cr - Mn - Ni - Mo - N钢的耐寒性。第2部分。低温静态和冲击载荷下非金属夹杂物颗粒的影响因素研究

M. Kostina, A. Kudryashov, L. Rigina, S. Muradyan, O. Antonova, V. S. Kostina
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摘要

在整个气候温度范围内,含0.5% N的新型铸造奥氏体Cr - Ni - Mn钢(牌号05Kh21AG15N8MFL)优于用于比较的18Cr - 10ni型铸钢。在这部分文章中,重点研究了亚氮钢铸造金属中非金属夹杂物(NMI)的颗粒,它是影响低温静载荷和冲击载荷下力学性能的一个因素。实验金属中的NMI为球状的氧化硫化物,中心部分为SiO2氧化物,外层为硫化锰MnS,平均粒径为~ 75%,达4 μm。已经确定,当测试铸钢在-160°C下的冲击弯曲时,这些NMI不会作为裂纹萌生的来源,也不会促进裂纹的扩展,而是在孤立的凹坑中处于断口表面。在-110℃的拉伸条件下,含氮钢的屈服强度比+20℃时提高了1.7倍以上;当冷却至-110℃时,延展性不降低。在这种情况下,NMI颗粒由于其氧化部分的裂纹发展而发生强烈变形,即使NMI到达颈部区域工作部分的样品表面,它们也不会成为裂纹萌生的来源。在“NMI/变形金属”边界处没有形成裂纹。即使颗粒沿拉伸载荷轴以链的形式随机排列,在5 ~ 20 μm的距离上,颗粒周围也不会形成孔隙并合并成裂纹核。所得结果与文献数据一致,NMI在韧性钢中具有应力松弛剂的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cold resistance of new casting Cr – Mn – Ni – Mo – N steel. Part 2. Investigation of the factor of non-metallic inclusions particles under static and impact loading at low temperatures
The new casting austenitic Cr – Ni – Mn steel with 0.5 % N (grade 05Kh21AG15N8MFL) surpasses the casting steel of the 18Cr – 10 Ni type used for comparison in the entire range of climatic temperatures. In this part of the article, attention is paid to the particles of non-metallic inclusions (NMI) in the cast metal of nitrous steel as a factor that can affect the mechanical properties under static and impact loading at low temperatures. NMI in laboratory metal are globular oxysulfides, with SiO2 oxides in the central part and an outer layer formed by manganese sulfide MnS, with an average particle size of ~75 % up to 4 μm. It has been established that when testing casting steel for impact bending at –160 °C, these NMI do not serve as a source of crack initiation, do not contribute to their propagation and are in a fracture surface in isolated pits. Under tensile conditions at –110 °C, the yield strength of nitrogen containing steel increases by more than 1.7 times in comparison with the properties at +20 °C; ductility does not decrease when cooled to –110 °C. In this case, NMI particles are strongly deformed due to the development of cracks in their oxide part, and even when NMI reaches the surface of the sample in working part in the neck zone, they do not serve as a source of crack initiation. Cracks at the boundary “NMI/ deforming metal” are not formed. Even with a random arrangement of particles in the form of chains along the axis of application of the tensile load, at a distance of 5 – 20 μm from each other, pores do not form around the particles and merge into a crack nucleus. The results obtained correlate with the literature data that NMI can act as stress relaxers in ductile steels.
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