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面心立方金属银和镍的微观结构稳定性及向不稳定摩擦的转变

Microstructural Stability and Transition to Unstable Friction for FCC Metals: Ag and Ni.

作者信息

Moshkovich Alexey, Popov Inna, Remennik Sergei, Rapoport Lev S

机构信息

Department of Science, Holon Institute of Technology, Holon 5810201, Israel.

Center for Nanoscience and Nanotechnology, Hebrew University of Jerusalem, Jerusalem 91904, Israel.

出版信息

Materials (Basel). 2025 Sep 2;18(17):4123. doi: 10.3390/ma18174123.

Abstract

The effect of dislocation pile-ups responsible for the generation or annihilation of dislocations during friction of Ag and Ni was considered. The steady-state friction was accompanied by the formation of twin bundles, intersecting twins, dislocations, adiabatic elongated shear bands, and intense dynamic recrystallization. The mechanisms of microstructural stability and friction instability were analyzed. The theoretical models of dislocation generation and annihilation in nanocrystalline FCC metals in the context of plastic deformation and failure development under friction were proposed. The transition to unstable friction was estimated. The damage of Ag was exhibited in the formation of pores, reducing the contact area and significantly increasing the shear stress. The brittle fracture of Ni represents a catastrophic failure associated with the formation of super-hard nickel oxide. Deformation resistance of the dislocation structures in the mesoscale and macroscale was compared. The coefficient of similitude (K) has been introduced in this work to compare plastic deformation at different scales. The model of the strength-ductility trade-off and microstructural instability is considered. The interaction between the migration of dislocation pile-ups and the driving forces applied to the grain boundaries was estimated. Nanostructure stabilization through the addition of a polycrystalline element (solute) to the crystal interiors in order to reduce the free energy of grain boundary interfaces was investigated. The thermodynamic driving force and kinetic energy barrier involved in strengthening, brittleness, or annealing under plastic deformation and phase formation in alloys and composite materials were examined.

摘要

研究了银和镍在摩擦过程中,位错堆积对新位错产生或位错湮灭的影响。稳态摩擦伴随着孪晶束、相交孪晶、位错、绝热拉长剪切带的形成以及强烈的动态再结晶。分析了微观结构稳定性和摩擦不稳定性的机制。提出了纳米晶面心立方金属在摩擦作用下塑性变形和破坏发展过程中位错产生和湮灭的理论模型。估算了向不稳定摩擦的转变。银的损伤表现为孔隙的形成,这减小了接触面积并显著增加了剪切应力。镍的脆性断裂是一种与超硬氧化镍形成相关的灾难性破坏。比较了中尺度和宏观尺度上位错结构的抗变形能力。在这项工作中引入了相似系数(K)来比较不同尺度下的塑性变形。考虑了强度-延展性权衡和微观结构不稳定性的模型。估算了位错堆积迁移与作用于晶界的驱动力之间的相互作用。研究了通过向晶体内部添加多晶元素(溶质)来降低晶界界面自由能从而实现纳米结构稳定化的方法。研究了合金和复合材料在塑性变形和相形成过程中强化、脆性或退火所涉及的热力学驱动力和动能势垒。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6eec/12429998/3703e7a8af79/materials-18-04123-g001.jpg

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