Investigation of the Features of the Formation of Diffusion Layers During Nitrocementation of High-Chromium Steels in a Carbon Black Medium

D. V. Kolmykov, Yu. S. Vorobyev, V. I. Kolmykov, E. V. Trusova
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Abstract

The purpose of the work is to establish the regularities of the formation of the structure and phase composition of surface (modified) layers on 20X13 chromium stainless steel under intense saturation with carbon and nitrogen and, on this basis, to substantiate the possibility of surface hardening of parts made of high-chromium steels by nitrocementation.Methods. The studies were carried out on samples made of high–chromium steel 20X13, which were subjected to high-temperature nitrocementation in a paste-like medium including fine soot, sodium carbonate and potassium ferruginous oxide (paste-forming agent is an aqueous solution of carbomethylcellulose). The microstructure was studied using an optical metallographic microscope OLIMPUS OX 51 and a scanning electron microscope Qanta FEG-650 with an X-ray microanalysis system EDAX. The microhardness was determined on the Duramit-5 microhardometer, the phase composition on the XRD-7000S X-ray diffractometer.Results. Nitrocementation of high chromium steel 20X13 in the temperature range of 820–950°C provides the formation of diffusion layers on the surface, the structure of which is represented by three zones: a crust of solid carbonitrides on the surface, an eutectoid zone with a solid matrix and inclusions of carbonitrides under the crust and a transition zone including a solid solution enriched in carbon and nitrogen with grains of the base metal. The microhardness of the nitrocemented layers on 20X13 steel after quenching from 1050°C in oil and tempering at 600°C reaches Nm 750–800 on the surface and decreases smoothly enough in depth of the nitrocemented layer. The depth of nitrocemented layers with increased microhardness (more than 400 Nm), depending on the duration of treatment, can reach ~ 0.5 (860°C, 6 hours).Conclusion. Nitrocementation of high-chromium steel 20X13 at 820–880°C in an active carbon black paste with the addition of potassium ferrocarbon leads to an increase in the hardness of the surface layers by about 4 times the hardness of the base, which, combined with the high mechanical properties of the base, will significantly increase the service life of parts made of high-chromium stainless steels of type X13 operating under high contact conditions loads.
碳黑介质中高铬钢硝化过程中扩散层形成特征的研究
本研究的目的是确定 20X13 铬不锈钢在碳和氮高饱和状态下表面(改性)层结构和相组成的形成规律,并在此基础上证实通过硝化对高铬钢制件进行表面硬化的可能性。研究对象是高铬钢 20X13 制成的试样,这些试样在包括细烟尘、碳酸钠和氧化铁钾在内的糊状介质(糊状形成剂为碳甲基纤维素水溶液)中进行了高温硝化。使用光学金相显微镜 OLIMPUS OX 51 和带有 X 射线显微分析系统 EDAX 的扫描电子显微镜 Qanta FEG-650 对微观结构进行了研究。显微硬度由 Duramit-5 显微硬度计测定,相组成由 XRD-7000S X 射线衍射仪测定。高铬钢 20X13 在 820-950°C 的温度范围内发生硝化,在表面形成扩散层,其结构由三个区域组成:表面的固态碳氮化物结壳区、结壳区下具有固态基体和碳氮化物夹杂物的共晶区以及包括富含碳和氮的固溶体与基体金属晶粒的过渡区。20X13 钢在 1050°C 油中淬火并在 600°C 回火后,其氮化层的显微硬度在表面达到 Nm 750-800,并在氮化层深度平稳下降。根据处理时间的长短,显微硬度增加(超过 400 Nm)的氮化层深度可达 ~ 0.5(860°C,6 小时)。在添加了铁碳钾的活性碳黑浆中对 20X13 型高铬钢进行 820-880°C 的氮化处理,可使表层硬度提高约 4 倍,再加上基体的高机械性能,可显著提高在高接触条件下工作的 X13 型高铬不锈钢部件的使用寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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