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首页> 外文期刊>Diffusion and Defect Data. Solid State Data, Part B. Solid State Phenomena >Analysis of microstructural changes with temperature of thermally sprayed WC-Co coatings by mechanical spectroscopy
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Analysis of microstructural changes with temperature of thermally sprayed WC-Co coatings by mechanical spectroscopy

机译:用机械光谱法分析WC-Co热喷涂涂层的显微组织随温度的变化

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摘要

Thermally sprayed hardmetal coatings can be used to improve the wear or fatigue resistance of mechanical parts. Depending on the deposition conditions, their microstructure and phase composition are out of equilibrium at different levels due to the extreme heating/cooling rates. In the present study, the changes that occur with temperature variation are monitored by mechanical spectroscopy. Requirements to specimen of mechanical spectroscopy created the need to prepare WC-17%Co coatings of 1.2 mm thickness by high velocity oxy-fuel (HVOF) spraying. The coatings, separated from the substrate by spark erosion, were tested in a forced torsion pendulum between room temperature and 1570 K at a temperature scanning rate of 1K/min. The mechanical loss spectrum shows different features. At 800 K, a maximum M1 is observed in coincidence with a sudden increase of the elastic modulus. The change of the elastic modulus is due to a densification of the material possibly related to cobalt recrystallization. A relaxation peak located at about 1100 K is typically found in WC-Co hardmetals. It is attributed to the movement of dislocations in the cobalt phase. A sharp peak is observed at 1510 K on heating and at 1410 K on cooling. Such peak is due to the reversible transition from W _3Co _3C at high temperature to W _6Co _6C at low temperature as proven by X-ray diffraction. The reversibility of such transformation was observed for the first time.
机译:热喷涂硬质合金涂层可用于改善机械零件的耐磨性或抗疲劳性。取决于沉积条件,由于极高的加热/冷却速率,它们的微观结构和相组成在不同的水平上是不平衡的。在本研究中,通过机械光谱法监测随温度变化而发生的变化。对机械光谱标本的要求导致需要通过高速氧燃料(HVOF)喷涂制备1.2毫米厚的WC-17%Co涂层。通过电火花腐蚀与基材分离的涂层在室温至1570 K之间的强制扭摆中以1K / min的温度扫描速率进行测试。机械损耗谱显示出不同的特征。在800 K时,观察到最大M1,同时弹性模量突然增加。弹性模量的变化归因于可能与钴重结晶有关的材料的致密化。在WC-Co硬质合金中通常会发现约1100 K的弛豫峰。这归因于位错在钴相中的运动。在加热时为1510 K,在冷却时为1410 K,观察到一个尖锐的峰。该峰是由于X射线衍射证实的从高温的W _3Co _3C到低温的W _6Co _6C的可逆转变。首次观察到这种转化的可逆性。

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