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Mechanical properties and load bearing capability of nanocrystalline nickel-tungsten multilayered coatings

机译:纳米晶镍 - 钨多层涂层的机械性能和承载能力

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摘要

Nanocrystalline nickel-tungsten alloys are of high industrial interest owing to their mechanical properties, wear and corrosion resistance, as well as their thermal stability. Since the patterning of their structures potentially enhances mechanical and tribological characteristics, layered nickel-tungsten alloys were developed by sequential electrodeposition of bi-layers (two different concentrations of tungsten) in the current study. The layer thickness was modulated in the range of 90 to 3000 nm. Using a modified pulse reverse current technique, all the layers were deposited from a fixed citrate-based electrolyte. Studying the material by microhardness and Palmqvist techniques revealed that the microhardness of the coatings was improved by reduction of layer thicknesses, in accordance with Hall-Petch relation. Wear test results indicated that layered coatings were more resistant in comparison with the monolithic counterparts. Furthermore, microscopy investigations showed that by reducing the layer's thickness, the plastically deformed region underneath the wear front narrows, thus increasing the load-bearing capabilities.
机译:由于其机械性能,磨损和耐腐蚀性以及其热稳定性,纳米晶镍钨合金具有高的工业利益。由于其结构的图案潜在地提高了机械和摩擦学特性,因此通过在目前的研究中通过双层电沉积(两种不同浓度的钨)开发了层状镍钨合金。层厚度在90至3000nm的范围内调节。使用改进的脉冲反向电流技术,将所有层从固定的柠檬酸盐基电解质沉积。通过微硬度和棕榈仪技术研究材料显示,通过根据霍尔竖起关系通过减少层厚度来提高涂层的显微硬度。磨损测试结果表明,与整体对应物相比,层状涂层更耐耐药。此外,显微镜研究表明,通过减小层的厚度,磨损前部下方的塑性变形区域变窄,从而增加了承载能力。

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