首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >The effects of substrate dilution on the microstructure and wear resistance of PTA Cu-Al-Fe aluminium bronze coatings
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The effects of substrate dilution on the microstructure and wear resistance of PTA Cu-Al-Fe aluminium bronze coatings

机译:基材稀释对PTA Cu-Al-Fe铝青铜涂层微观结构和耐磨性的影响

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摘要

Cu-Al-Fe aluminium bronze alloys are good candidates for precious tools and forming dies due to their high wear resistance, good sliding properties and low tendency for adhesion to ferrous metals. Plasma transferred arc (PTA) is an effective process for deposition of such robust coatings by enhancing the bond between the bronze coating and steel substrate. However, the microstructure and wear characteristics of these coatings are strongly influenced by the diffusion of substrate elements (mostly iron) to the interface. In the present study, the effects of substrate dilution on the microstructure and wear behaviour of Cu-Al-Fe alloy deposited by PTA on medium carbon steel substrate were investigated. The results show that the deposition current controls the melting temperature and iron dilution which result in the formation of Cu_3Al martensitic β_1' phase in a low dilution and the ordered β_1 phase in high dilution. The wear behaviour of the coating is dominated by failure of the matrix phase. Low dilution coating with martensitic phase exhibits the highest wear resistance. On high diluted Fe rich coating, pile up of dislocation on the intermetallic K phase leads to surface cracks and delamination of the coating resulting in a high wear rate.
机译:Cu-Al-Fe铝青铜合金是珍贵工具的良好候选者,由于它们的高耐磨性,良好的滑动性能和对黑色金属粘附的低倾向而形成模具。等离子体转移的电弧(PTA)是通过增强青铜涂层和钢基板之间的粘合来沉积这种牢固涂层的有效方法。然而,这些涂层的微观结构和磨损特性受到基板元件(主要是铁)到界面的扩散的强烈影响。在本研究中,研究了基质稀释对由PTA沉积在中碳钢基板上的Cu-Al-Fe合金的微观结构和磨损行为的影响。结果表明,沉积电流控制熔融温度和铁稀释,这导致在低稀释液中形成Cu_3Al马氏体β_1'相,并且在高稀释中的有序β_1相。涂层的磨损行为由基质相失效主导。用马氏体相的低稀释涂层表现出最高的耐磨性。在高稀释的Fe Rich涂层上,堆叠在金属间K相的脱位上,导致表面裂缝和涂层的分层,从而产生高磨损率。

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