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Optimization of Corrosion Wear Resistance of the NiCrBSi Laser-Clad Coatings Fabricated on Ti6Al4V

机译:Ti6Al4V制造的NiCrBSI激光包覆涂层腐蚀耐磨性的优化

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Ni-based alloy powder (NiCrBSi) was applied to prepare coatings on Ti6Al4V by laser cladding to improve the wear resistance of the latter under corrosion. The scanning speed was found to be an essential parameter that could adjust the microstructure of the coatings. Changes in the microstructures of the coatings with the scanning speed were highlighted, and the relationships between the microstructures and microhardness, fracture toughness, corrosion, and corrosion wear resistance of the coatings were established. Results indicated that the matrix changes from Ti2Ni TiNi to primary γ(Ni) eutectics (γ(Ni) Ni3Ti) with increasing scanning speed. Moreover, reinforcement phases changed from TiB2 TiC (5 mm?s?1) to TiB2 TiC Cr7C3 (11 mm?s?1) to TiB2 TiC Cr7C3 CrB (17 mm?s?1). The average microhardness of the coatings first increased and then decreased, and the corresponding fracture toughness showed the opposite trend. The optimum combination of these properties was observed in the coating prepared at 11 mm?s?1. This coating demonstrated excellent wear resistance in 3.5 wt.% NaCl solution, as well as a high corrosion potential, a low corrosion current density, and a low current density when the electrode initially entered a comparatively stable corrosion state. Moreover, compared with coatings prepared at other scanning speeds, this coating revealed a higher critical potential for oxidation film destruction. The results of this research collectively show that regulating the microstructures of laser-clad coatings by applying different scanning speeds is a feasible strategy to optimize the wear resistance of the coatings under corrosion.
机译:施用Ni基合金粉末(NiCrBSI)以通过激光熔覆在Ti6Al4V上制备涂层,以提高腐蚀下后者的耐磨性。发现扫描速度是可以调节涂层的微观结构的基本参数。突出了涂层涂层的微观结构的变化,建立了微观结构和微硬度,断裂韧性,腐蚀和涂层腐蚀耐磨性之间的关系。结果表明,随着扫描速度的增加,基质从TI2NI TINI从TI2NI TINI变为初级γ(NI)的γ(NI)γ(NI)NI3TI)。此外,加强阶段从TIB2 TIC(5mmΔ1)变为TIB2 TIC CR7C3(11mm→S≤1)到TIB2 TIC CR7C3 CRB(17mm≤1)。涂层的平均微硬度首先增加,然后降低,并且相应的断裂韧性显示出相反的趋势。在11mm 3mm 2的涂层中观察到这些性质的最佳组合。该涂层在3.5重量%中显示出优异的耐磨性。当电极最初进入相对稳定的腐蚀状态时,在3.5重量%的NaCl溶液中以及高腐蚀电位,低腐蚀电流密度和低电流密度。此外,与在其他扫描速度制备的涂层相比,该涂层揭示了氧化膜破坏的临界潜力。该研究的结果集体表明,通过施加不同的扫描速度调节激光包覆涂层的微观结构是优化腐蚀下涂层的耐磨性的可行策略。

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