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Increase of Wear Resistance and Contact-Fatigue Strength of Wheel Steel by Plasma Hardening

机译:通过等离子淬火提高车轮钢的耐磨性和接触疲劳强度

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Metallographic studies of structural-phase states formed in the section of the flange of the wheel band during surface plasma hardening were conducted. It is shown that the formation of several structural zones of different micro hardness is distinctly observed in the depth of hardening, which indicates the formation of a graded-layered structure. It has been confirmed that at superfast heating rates that occur during surface plasma quenching, phase and structural transformations are shifted to high temperatures, greatly changing the kinetics of nucleation and growth of the new phase (austenite). This forms a fine-grained austenite, which turns into a highly disperse martensitic structure, unattainable by traditional methods of heat treatment. It is shown that the main factor leading to strong hardening of the surface layer during plasma treatment is the formation in the near-surface zone of a nonequilibrium metastable structure, which goes over to a narrow zone of complete and incomplete quenching with an inhomogeneous and distorted structure of highly disperse martensite with a high level of internal stresses. The complete wear of the unstressed flange of the tire wheel band is 1.9 mm in 1.1 years, and for hardened flanges, wear is 0.7 mm for 2.6 years.
机译:进行了在表面等离子硬化过程中在轮箍的凸缘部分中形成的结构相态的金相研究。结果表明,在硬化深度中明显观察到了几个具有不同显微硬度的结构区域的形成,这表明形成了分层结构。已经证实,在表面等离子体淬火期间发生的超快加热速率下,相和结构转变转移到了高温,大大改变了新相(奥氏体)的成核和生长动力学。这形成了细晶粒的奥氏体,它变成了高度分散的马氏体结构,这是传统热处理方法无法达到的。结果表明,导致等离子处理过程中表面层强硬化的主要因素是在不平衡亚稳结构的近表面区域中形成的区域,该区域延伸到完全淬火和不完全淬火的狭窄区域,且不均匀且变形高度分散的马氏体的结构,具有较高的内应力。轮胎带束层的无应力法兰在1.1年内的完全磨损为1.9毫米,而对于硬化法兰,则在2.6年内的磨损为0.7毫米。

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