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Microstructure, Microhardness, Fracture Toughness, and Abrasive Wear of In-Situ Synthesized TiC/Ti-Al Composite Coatings by Cold Spraying Combined with Heat Treatment

机译:用冷喷涂结合热处理原位合成的TiC / Ti-Al复合涂层的微观结构,微硬度,断裂韧性和磨料磨损

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TiAl intermetallic compounds, as a new kind of high-performance light-weight structural material, are widely applied in many fields. Titanium carbide (TiC) as the reinforcing phase could improve the mechanical properties, wear resistance, and heat-resistance stability of TiAl intermetallic compounds. Ti(Al, C) mixture powders were deposited by cold spraying at gas temperature of 250 °C, 450 °C, and 550 °C. Then, Ti(Al, C) coatings were annealed at temperatures of 650 °C for different times and following holding at 1100 °C for 3 h. The microstructure, microhardness, fracture toughness, and abrasive wear of Ti-Al composite coatings were investigated. The research results were that the particle size of mixture powders decreased as the ball milling time prolonging. Ti(Al) solid solution appeared in the mixture powders as the milling time increased to 30 h. The average porosity of the coating sprayed at 550 °C was the lowest (0.85%). The as-sprayed coatings exhibited the same phase compositions with the mixture powders. The coating sprayed at gas temperature of 550 °C has the highest microhardness and the lowest weight loss. Ti-Al intermetallic was in-situ synthesized after annealing at 650 °C. The average porosity of the annealed coating (sprayed at 450 °C) was the lowest. The content of Ti-Al intermetallic compounds of the annealed coating sprayed at 450 °C is the highest. The X-ray diffraction( XRD) analysis results are consistent with the EDS analysis of the annealed coatings after annealing at 650 °C. Ti-Al intermetallic compounds were almost completely formed in the three kinds of the coatings after annealing at 650 °C for 20 h and following holding at 1100 °C for 3 h. TiAl and TiAl3 intermetallic phases were in-situ synthesized in the coatings based on the energy dispersive spectroscopy (EDS) and XRD analysis. TiC was also in situ synthesized in the coatings as the annealing temperature increased to 1100 °C. The annealed coating (sprayed at 450 °C) has the highest microhardness, fracture toughness, and wear resistance properties after annealing at 1100 °C for 3 h.
机译:作为一种新型高性能轻型结构材料的TiA1金属间化合物广泛应用于许多领域。作为增强相的碳化钛(TIC)可以改善Tial金属间化合物的机械性能,耐磨性和耐热稳定性。通过冷喷涂在250℃,450℃和550℃的气温下沉积Ti(Al,C)混合物粉末沉积。然后,在650℃的温度下,Ti(Al,C)涂层在不同时间的温度下退火,并且在1100℃下保持3小时。研究了Ti-Al复合涂层的微观结构,微硬度,断裂韧性和磨料。研究结果是混合物粉末的粒度随着球磨时间延长而降低。当铣削时间增加到30小时时,Ti(Al)在混合物粉末中出现固溶体。在550℃下喷涂的涂层的平均孔隙率最低(0.85%)。喷涂涂层与混合物粉末表现出相同的相组合物。喷涂在550℃的气体温度下喷涂的涂层具有最高的微硬度和最低减肥。在650℃下退火后,Ti-Al金属间金属间位于原位合成。退火涂层的平均孔隙率(在450℃下喷涂)是最低的。在450℃下喷涂的退火涂层的Ti-Al金属间化合物的含量最高。 X射线衍射(XRD)分析结果与在650℃下退火后退火涂层的EDS分析一致。在650℃下在650℃下进行20小时并在1100℃下保持3小时后,Ti-Al金属间化合物几乎完全形成在三种涂层中。基于能量分散光谱(EDS)和XRD分析,在涂层中合成TiAl和TiAl3金属间相。 TIC也在涂层中合成,因为退火温度升至1100℃。退火涂层(在450℃下喷涂)具有最高的微硬度,断裂韧性,并在1100℃下退火3小时后的耐磨性。

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