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Effects of post-heat treatment on microstructure and properties of laser cladded composite coatings on titanium alloy substrate

机译:后热处理对钛合金基体激光熔覆复合涂层组织和性能的影响

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The composite coatings were produced on the Ti6Al4V alloy substrate by laser cladding. Subsequently, the coatings were heated at 500 degrees C for 1 h and 2 h and then cooled in air. Effects of post-heat treatment on microstructure, microhardness and fracture toughness of the coatings were investigated by scanning electron microscopy (SEM), X-ray diffraction (XRD), energy dispersive spectroscopy (EDS), optical microscopy (OM). Wear resistance of the coatings was evaluated under the dry sliding reciprocating friction condition at room temperature. The results indicated that the coatings mainly consist of a certain amount of coarse white equiaxed WC particles surrounded by the white-bright W2C, a great deal of fine dark spherical TiC particles and the matrix composed of the alpha(Ti), Ti2Ni and TiNi phases. Effects of the post-heat treatment on phase constituents and microstructure of the coatings were almost negligible due to the low temperature. However, the post-heat treatment could decrease the residual stress and increase fracture toughness of the coatings, and fracture toughness of the coatings was improved from 2.77 MPa m(1/2) to 3.80 MPa m(1/2) and 4.43 MPa m(1/2) with the heat treatment for 1 h and 2 h, respectively. The mutual role would contribute to the reduction in cracking susceptibility. Accompanied with the increase in fracture toughness, microhardness of the coatings was reduced slightly. The dominant wear mechanism for all the coatings was abrasive wear, characterized by micro-cutting or micro-plowing. The heat treatment could significantly decrease the average friction coefficient and reduce the fluctuation of the friction coefficient with the change in sliding time. The appropriate heat treatment time (approximately 1 h) had a minimal effect on wear mass loss and volume loss. Moreover, the improvement in fracture toughness will also be beneficial to wear resistance of the coatings under the long service. (C) 2014 Elsevier Ltd. All rights reserved.
机译:通过激光熔覆在Ti6Al4V合金基底上制备复合涂层。随后,将涂层在500摄氏度下加热1小时和2小时,然后在空气中冷却。通过扫描电子显微镜(SEM),X射线衍射(XRD),能量色散光谱(EDS),光学显微镜(OM)研究了后热处理对涂层组织,显微硬度和断裂韧性的影响。在室温下在干式滑动往复摩擦条件下评估涂层的耐磨性。结果表明,涂​​层主要由一定数量的粗白等轴WC颗粒和白光W2C包围,大量细的黑色球形TiC颗粒和由α(Ti),Ti2Ni和TiNi相组成的基体组成。由于温度低,后热处理对涂层的相组成和微观结构的影响几乎可以忽略不计。然而,后热处理可以降低涂层的残余应力并增加涂层的断裂韧性,并且涂层的断裂韧性从2.77 MPa m(1/2)提高到3.80 MPa m(1/2)和4.43 MPa m (1/2)分别进行1小时和2小时的热处理。相互的作用将有助于降低裂纹敏感性。随着断裂韧性的增加,涂层的显微硬度略有降低。所有涂层的主要磨损机理是磨料磨损,其特征在于微切割或微铣。热处理可以显着降低平均摩擦系数,并随着滑动时间的变化减小摩擦系数的波动。适当的热处理时间(约1小时)对磨损质量损失和体积损失影响最小。而且,断裂韧性的改善也将有益于长期使用下涂层的耐磨性。 (C)2014 Elsevier Ltd.保留所有权利。

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