Guidry D J, Lian K, Jiang J C, Meletis E I
Materials Science and Engineering Department, University of Texas at Arlington, Arlington, Texas 76019, USA.
J Nanosci Nanotechnol. 2009 Jul;9(7):4156-63. doi: 10.1166/jnn.2009.m25.
During the last decade, an intensive investigative effort around the globe has been devoted to the understanding of scale effects on materials properties. In spite of their importance, nanoscale effects on tribological properties have attracted little attention. Such effects are of utmost importance to small scale devices such as nano and micro electromechanical systems that contain nanostructured dynamic components that would be difficult to replace or repair. The significant increase in strength arising from the grain size reduction in the nano domain is expected to impact on mechanical processes at asperity contacts that are dominating wear behavior. In the present work, nanocrystalline Ni produced by electroplating was used as a model system to study scale effects on tribological behavior. It was found that compared to bulk (microcrystalline), nanocrystalline Ni can cause a significant reduction in both, the coefficient of friction and wear rate. A consistent relationship was found between grain size, hardness and tribological behavior. It is suggested that the improved tribological behavior of the nanocrystalline Ni is due to the refinement of mechanical processes inhibiting plastic deformation by extensive dislocation motion leading to fracture events.
在过去十年里,全球范围内都在集中开展研究工作,致力于理解尺度效应如何影响材料性能。尽管其重要性不言而喻,但纳米尺度对摩擦学性能的影响却很少受到关注。这种效应对于诸如纳米和微机电系统等小型设备至关重要,这些系统包含难以替换或修复的纳米结构动态部件。纳米区域内晶粒尺寸减小所导致的强度显著增加,预计会对主导磨损行为的粗糙接触处的机械过程产生影响。在本研究中,采用电镀法制备的纳米晶镍作为模型体系,来研究尺度效应如何影响摩擦学行为。研究发现,与块状(微晶)镍相比,纳米晶镍能显著降低摩擦系数和磨损率。晶粒尺寸、硬度与摩擦学行为之间存在一致的关系。研究表明,纳米晶镍摩擦学性能的改善归因于机械过程的细化,这种细化通过广泛的位错运动抑制塑性变形,从而导致断裂事件的发生。