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Lowering coefficient of friction in Cu alloys with stable gradient nanostructures

机译:具有稳定梯度纳米结构的Cu合金的降低摩擦系数

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摘要

The coefficient of friction (COF) of metals is usually high, primarily because frictional contacts induce plastic deformation underneath the wear surface, resulting in surface roughening and formation of delaminating tribolayers. Lowering the COF of metals is crucial for improving the reliability and efficiency of metal contacts in engineering applications but is technically challenging. Refining the metals’ grains to nanoscale cannot reduce dry-sliding COFs, although their hardness may be elevated many times. We report that a submillimeter-thick stable gradient nanograined surface layer enables a significant reduction in the COF of a Cu alloy under high-load dry sliding, from 0.64 (coarse-grained samples) to 0.29, which is smaller than the COFs of many ceramics. The unprecedented stable low COF stems from effective suppression of sliding-induced surface roughening and formation of delaminating tribolayer, owing to the stable gradient nanostructures that can accommodate large plastic strains under repeated sliding for more than 30,000 cycles.
机译:金属的摩擦系数(COF)通常很高,这主要是因为摩擦接触会在磨损表面下引起塑性变形,从而导致表面变粗糙并形成分层的摩擦层。降低金属的COF对于提高工程应用中金属触点的可靠性和效率至关重要,但在技术上却具有挑战性。尽管金属的硬度可能会提高很多倍,但将金属的晶粒细化为纳米级并不能减少干滑动的COF。我们报告说,亚毫米厚的稳定梯度纳米颗粒表面层能够使高负荷干滑下的铜合金的COF显着降低,从0.64(粗颗粒样品)降低到0.29,这比许多陶瓷的COF小。前所未有的稳定的低COF源于有效抑制滑动引起的表面粗糙化和分层摩擦层的形成,这归因于稳定的梯度纳米结构,该结构可以在超过30,000个循环的反复滑动下适应较大的塑性应变。

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