微弧钢钒化过程中扩散层力学性能的评价

M. Stepanov, Yu. M. Dombrovskii, L. V. Davidyan
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引用次数: 3

摘要

传统的钢材热化学处理工艺持续时间较长,因此提出了利用高能冲击材料表面来增强扩散饱和的新方法。在微弧合金化过程中,将钢制品浸入装有煤粉的容器中,通过电流加热。在粉末环境中,形成微放电,微放电集中在产品周围,形成气体放电区,形成含碳气体环境,使钢渗碳成为可能。含有扩散剂的涂层的应用允许由于碳同时扩散到合金元素而形成碳化物类型的涂层。研究了钒钢微弧表面合金化对扩散涂层力学性能的影响,揭示了钢在微弧合金化过程中硬化的主要机理。采用20钢的圆柱形试样;源扩散剂为钒铁粉末。样品表面的电流密度为0.3 A/cm2,过程总持续时间为3 min。在2.5 mN, 20 mN和100mN载荷下,使用锥体压头通过压痕评估涂层的机械性能。厚度为170 ~ 180 μm的扩散层由硬度为8 ~ 9 GPa的基体组成,其中含有5 μm的轻度蚀刻夹杂物,显微硬度为21 ~ 25 GPa。层底为钒在铁中的α-固溶体,包裹体为VC0.863型碳化物。原子力显微镜观察发现,涂层表面形貌由单个较大的3 μm碳化物颗粒和多个纳米碳化物颗粒组成,这些纳米碳化物颗粒作为强化相,提供了较高的显微硬度。通过压痕法对硬化层的横截面进行分析,验证了不同载荷下碳化物颗粒的硬化效果。对可能的硬化机制的估计表明,扩散组分对扩散层硬化的贡献最大,与初始状态相比,α-固溶体铁的屈服应力显著增加,是固溶硬化的38倍。
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EVALUATION OF THE MECHANICAL PROPERTIES OF DIFFUSION LAYER IN THE PROCESS OF MICROARC STEEL VANADATION
Traditional processes of thermochemical treatment of steel have a longer duration, so there are proposed the new methods of intensification of diffusion saturation with high-energy impacts on the material surface. In the process of micro-arc alloying the steel product is immersed in a container filled with powder of coal, and is heated by passing electric current. In a powder environment, microdischarges are formed, which are concentrated around the product and create an area of gas discharge with the formation of a carbonaceous gas environment, which enables carburizing of steel. The application of coating containing diffusant allows forming coating of a carbide type due to simultaneous carbon diffusion into alloying elements. The influence of micro-arc surface alloying of steel with vanadium on mechanical properties of diffusion coatings is studied, and the primary mechanism of steel hardening at microarc alloying is revealed. Cylindrical samples of 20 steel were used; the source diffusant was a powder of ferrovanadium. Current density on the sample surface was 0.3 A/cm2, total duration of the process was 3 min. The mechanical properties of coatings were evaluated by means of indentation using pyramidal indenter, at loads of 2.5 mN, 20 mN and 100mN. The diffusion layer with thickness of 170 – 180 μm consists of a base with hardness of 8 – 9 GPa, containing mild etching inclusions of up to 5 μm with microhardness of 21 – 25 GPa. The base of the layer represents an α-solid solution of vanadium in iron, and inclusions are carbides of VC0.863 type. By atomic force microscopy it was established, that the surface relief is defined by single, relatively large carbide particles with a size of up to 3 μm, and by plural nano-sized carbide particles, which act as  the strengthening phase, providing high microhardness of the coating. By method of indentation of the hardened layer cross section using different loads hardening effect of the carbide particles is proven. Estimation of possible mechanisms of hardening have shown that the greatest contribution to diffusion layer hardening is made by dispersion component significantly increasing the yield stress of α-solid solution of iron in comparison with the initial state, which is 38 times greater than the contribution of solid-solution hardening.
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来源期刊
Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya
Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya Materials Science-Materials Science (miscellaneous)
CiteScore
0.90
自引率
0.00%
发文量
81
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