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Tribological Characteristics of Corrugated Nano-Scale Dimpled and Nanostructured Surfaces

机译:波纹纳米尺度波纹和纳米结构表面的摩擦学特性

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The effects of ultrasonic nanocrystalline surface modification (UNSM) on the tribological characteristics of two different Cu-based alloys sintered on low carbon steel were investigated using a ball-on-disk reciprocating tribometer with a hardened bearing steel ball under oil-lubricated conditions. Experimental results showed that both the UNSM-treated Cu-based alloy specimens reduced the friction coefficient and enhanced the wear resistance compared to those of the polished specimens. Improvements in tribological characteristics of the UNSM-treated specimens may be attributed to the corrugated nano-scale dimpled and nanostructured surfaces and increased hardness. Addition of the 0.52% ferrum to Cu-based alloy is found to be beneficial in improving the tribological characteristics and in reducing the grain size. Scanning electron microscopy (SEM) was utilized to analyze the worn surfaces and characterize the wear mechanisms of the polished and UNSM-treated specimens. SEM analyses showed that the UNSM could reduce the abrasive wear which was the dominant wear mechanism of both Cu-based alloys specimens. In addition, the density and porosity measurement of both sintered Cu-based alloys revealed that the density increased and the porosity decreased after UNSM.
机译:在油润滑条件下,采用带有硬轴承钢球的圆盘往复式摩擦计,研究了超声纳米晶表面改性(UNSM)对两种在低碳钢上烧结的铜基合金的摩擦学特性的影响。实验结果表明,与抛光试样相比,这两种经UNSM处理的Cu基合金试样均降低了摩擦系数并提高了耐磨性。经UNSM处理的标本的摩擦学特性的改善可能归因于波纹状的纳米级凹坑和纳米结构表面以及增加的硬度。发现将0.52%的铁添加到Cu基合金中有利于改善摩擦学特性和减小晶粒尺寸。扫描电子显微镜(SEM)用于分析磨损的表面并表征抛光和UNSM处理过的样品的磨损机理。扫描电镜分析表明,UNSM可以减少磨料磨损,这是两种铜基合金试样的主要磨损机理。另外,两种烧结铜基合金的密度和孔隙率测量结果表明,UNSM后密度增加,孔隙率降低。

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