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The influence of hydrogen desorption on micromechanical properties and tribological behavior of iron and carbon steels

机译:氢解吸对铁和碳钢微机械性能和摩擦学行为的影响

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The influence of the previous electrolytic hydrogenation on the micromechanical properties and tribological behavior of the surface layers of iron and carbon steels has been studied. The concentrations of diffusion-moving and residual hydrogen in steels are determined depending on the carbon content. It is shown that the amount of sorbed hydrogen is determined by the density of dislocations and the relative volume of cementite. After desorption of diffusion-moving hydrogen the microhardness increases and materials plasticity decreases. The change of these characteristics decreases with the increase of carbon content in the steels. Internal stresses increase and redistribute under hydrogen desorption. Fragmentation of ferrite and perlite occurs as a result of electrolytic hydrogenation. Ferrite is characterized by the structure fragmentation and change of the crystallographic orientation of planes. The perlite structure shows the crushing of cementite plates and their destruction. The influence of hydrogen desorption on the microhardness of structural components of ferrite-perlite steels is shown. Large scattering of microhardness is found in perlite, due to different diffusion rates of hydrogen because of the unequally oriented cementite plates. It was found that the tendency of materials to blister formation is reduced with the increase of carbon content. The influence of hydrogen on the tribological behaviour of steels under dry and boundary friction has been studied. It is shown that hydrogen desorption intensifies the materials wear. After hydrogen desorption, tribological behaviour is determined by the adhesion interaction between the contacting pairs.
机译:研究了先前电解氢化对铁和碳钢表面层的微机械性能和摩擦学行为的影响。钢中的扩散和残余氢的浓度取决于碳含量。结果表明,吸附的氢气量由脱位密度和渗碳石的相对体积确定。在解吸扩散氢后,微硬度增加,材料可塑性降低。随着钢中碳含量的增加,这些特性的变化降低。内应力在氢解吸下增加和重新分配。作为电解氢化的结果,将发生铁素体和珍珠岩的碎片化。铁氧体的特征在于结构碎片和平面晶体取向的变化。珍珠岩结构显示了渗碳石板的破碎及其破坏。显示了氢解吸对铁氧体 - 珍珠岩钢结构组分的显微硬度的影响。由于氢气的不同扩散速率,因此,由于氢气的渗透石板不同,因此在珍珠岩中发现了大量散射。发现,随着碳含量的增加,将材料与泡罩形成的趋势降低。研究了氢对干燥和边界摩擦下钢材摩擦学行为的影响。结果表明,氢解吸加剧了材料磨损。在氢解吸后,摩擦学行为由接触对之间的粘附相互作用决定。

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