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Study on Friction and Wear Properties of Zr–Cu–Ni–Al Crystalline Powder Cladding and Amorphous Composite Powder Cladding by Laser

机译:Zr-Cu-Ni-Al结晶粉末包层和激光裂缝磨损性能研究

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In order to improve the friction and wear performance and surface hardness of AISI 1045 steel and expand its application range, this paper carried out the research on friction and wear performance and surface hardness of Zr65Al7.5Ni10Cu17.5 crystalline powder (CP) and amorphous powder (AP) after laser cladding on AISI 1045 steel surface. The results show that both CP and amorphous powder (AP) formed a cladding layer on the surface of AISI 1045 steel under laser irradiation. The thickness of the cladding layer is about 400 μm, and the thickness of the AP cladding layer is slightly larger than that of the CP cladding layer. The results show that there are many holes in the AP cladding layer, and holes can be observed at the junction with the matrix; while the CP cladding layer is well combined with the matrix and no holes are observed. The friction performance of CP cladding layer is better than that of AP cladding layer. In the wear marks of the AP cladding layer, there are bonding areas, while the wear marks of the CP cladding layer have a furrow-like morphology, and part of the matrix is exposed. The surface microhardness and average microhardness of AP cladding layer are 49% and 94% higher than that of CP cladding layer, respectively. Hardness modification has obvious advantages. The reasons for porosity, large friction coefficient and low stability of the friction experiment of the AP cladding layer are analyzed and discussed. The ideas and methods for improving the laser irradiation to achieve both high wear resistance and high strength of the AP cladding layer are proposed.
机译:为了提高AISI 1045钢的摩擦和磨损性能和表面硬度并扩大其应用范围,本文进行了Zr65Al7.51Ni17.5晶体粉末(CP)和无定形粉末的摩擦和磨损性能和表面硬度研究(AP)激光覆层后AISI 1045钢表面。结果表明,在激光照射下,CP和无定形粉末(AP)在AISI 1045钢的表面上形成包层。包层层的厚度约为400μm,并且AP包层的厚度略大于Cp包层层的厚度。结果表明,AP包层层中有许多孔,并且可以在与基质的连接处观察到孔;虽然CP包层层与矩阵很好,但没有观察到孔。 CP包层的摩擦性能优于AP包层层的摩擦性能。在AP包层层的磨损标记中,存在粘合区域,而CP包层层的磨损标记具有沟状形态,并且部分基质暴露。 AP包层的表面显微硬度和平均微硬度分别比Cp包层层高49%和94%。硬度改性具有明显的优势。分析并讨论了孔隙率,大摩擦系数和低稳定性的原因,并讨论了AP包层的摩擦实验。提出了改进激光照射以实现高耐磨性和高强度的应用的思路和方法。

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