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Gradient Formation Of Boride Layers By Borocarburizing

机译:硼碳共渗硼化物层的梯度形成

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In this study borocarburizing was used for the formation of gradient boride layers. The microstructure, microhardness profiles and the low-cycle fatigue strength during radial compression of carburized, borided and borocarburized layer have been compared. The gradient borocarburized layers, formed by bonding of previously carburized substrate, are characterized by two zones in diffusion layer: iron borides zone and carburized zone. After borocarburizing the iron borides show a tendency towards a loss of the needle-like nature. The hardness gradient between iron borides and low-carbon substrate is reduced. The microhardness beneath the iron borides decreases to 900 HV in carburized zone and next gradually decreases to 400-450 HV in the core of steel. The highest resistance to low-cycle fatigue during radial compression has been observed in case of carburized and through hardened layer. The fatigue strength of gradient boride layer (borocarburized and through hardened) is a little lower. The typical borided and through hardened layer is characterized by the lowest resistance to low-cycle fatigue during radial compression. The profiles of stresses after bonding and borocarburizing have been compared. The obtained profile of stresses and the lower values of tensile stresses at the surface can be the reason for higher frictional wear resistance of borocarburized layers and for higher fatigue strength of these layers, too.
机译:在这项研究中,硼碳共渗用于梯度硼化物层的形成。比较了渗碳层,渗硼层和渗硼层的径向压缩过程中的显微组织,显微硬度分布和低周疲劳强度。通过结合先前渗碳的基材而形成的梯度硼碳共渗层的特征在于扩散层中的两个区域:硼化铁区域和渗碳区域。硼碳共渗后,硼化铁表现出倾向于失去针状性质的趋势。硼化铁和低碳基材之间的硬度梯度降低了。硼化铁下方的显微硬度在渗碳区降至900 HV,然后在钢芯中逐渐降至400-450 HV。在渗碳和通过硬化层的情况下,在径向压缩过程中观察到了对低循环疲劳的最高抵抗力。梯度硼化物层(经渗碳和硬化)的疲劳强度略低。典型的渗硼和穿透硬化层的特点是在径向压缩过程中对低周疲劳的抵抗力最低。比较了粘结和硼碳共渗后的应力分布。所获得的应力分布和表面处较低的拉应力值可能是硼碳共渗层具有较高的耐磨耗性以及这些层具有较高的疲劳强度的原因。

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