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A low-to-high friction transition in gradient nano-grained Cu and Cu-Ag alloys

机译:梯度纳米颗粒Cu和Cu-Ag合金中的低至高摩擦转变

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A unique low-to-high friction transition is observed during unlubricated sliding in metals with a gradient nano-grained (GNG) surface layer. After persisting in the low-friction state (0.2–0.4) for tens of thousands of cycles, the coefficients of friction in the GNG copper (Cu) and copper-silver (Cu-5Ag) alloy start to increase, eventually reaching a high level (0.6–0.8). By monitoring the worn surface morphology evolution, wear-induced damage accumulation, and worn subsurface structure evolution during sliding, we found that the low-to-high friction transition is strongly correlated with distinct microstructural instabilities induced by vertical plastic deformation and wear-off of the stable nanograins in the subsurface layer. A very low wear loss of the GNG samples was achieved compared with the coarse-grained sample, especially during the low friction stage. Our results suggest that it is possible to postpone the initiation of low-to-high friction transitions and enhance the wear resistance in GNG metals by increasing the GNG structural stability against grain coarsening under high loading.
机译:在具有梯度纳米颗粒(GNG)表面层的金属上的非润滑中观察到独特的低到高摩擦转变。在持续到数万个循环的低摩擦状态(0.2-0.4)后,GNG铜(Cu)和铜 - 银(Cu-5Ag)合金中的摩擦系数开始增加,最终达到高水平(0.6-0.8)。通过监测磨损的表面形态演化,磨损造成的损伤积累和磨损的地下结构演变在滑动期间,我们发现低到高摩擦转变与垂直塑性变形和磨损引起的不同微观结构不稳定性强烈相关地下层中的稳定纳米簇。与粗粒样品相比,实现了GNG样品的非常低的磨损损失,尤其是在低摩擦阶段期间。我们的研究结果表明,通过提高高负载下的谷粒粗化的GNG结构稳定性,可以推迟出低于高摩擦转变的启动并提高GNG金属中的耐磨性。

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