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首页> 外文期刊>Journal of Thermal Spray Technology >Effect of Suspension Plasma-Sprayed YSZ Columnar Microstructure and Bond Coat Surface Preparation on Thermal Barrier Coating Properties
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Effect of Suspension Plasma-Sprayed YSZ Columnar Microstructure and Bond Coat Surface Preparation on Thermal Barrier Coating Properties

机译:悬浮等离子体喷涂YSZ柱状微观结构和粘合涂层表面制剂对热阻挡涂层性能的影响

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摘要

Suspension plasma spraying (SPS) is identified as promising for the enhancement of thermal barrier coating (TBC) systems used in gas turbines. Particularly, the emerging columnar microstructure enabled by the SPS process is likely to bring about an interesting TBC lifetime. At the same time, the SPS process opens the way to a decrease in thermal conductivity, one of the main issues for the next generation of gas turbines, compared to the state-of-the-art deposition technique, so-called electron beam physical vapor deposition (EB-PVD). In this paper, yttria-stabilized zirconia (YSZ) coatings presenting columnar structures, performed using both SPS and EB-PVD processes, were studied. Depending on the columnar microstructure readily adaptable in the SPS process, low thermal conductivities can be obtained. At 1100 A degrees C, a decrease from 1.3 W m(-1) K-1 for EB-PVD YSZ coatings to about 0.7 W m(-1) K-1 for SPS coatings was shown. The higher content of porosity in the case of SPS coatings increases the thermal resistance through the thickness and decreases thermal conductivity. The lifetime of SPS YSZ coatings was studied by isothermal cyclic tests, showing equivalent or even higher performances compared to EB-PVD ones. Tests were performed using classical bond coats used for EB-PVD TBC coatings. Thermal cyclic fatigue performance of the best SPS coating reached 1000 cycles to failure on AM1 substrates with a beta-(Ni,Pt)Al bond coat. Tests were also performed on AM1 substrates with a Pt-diffused gamma-Ni/gamma'-Ni3Al bond coat for which more than 2000 cycles to failure were observed for columnar SPS YSZ coatings. The high thermal compliance offered by both the columnar structure and the porosity allowed the reaching of a high lifetime, promising for a TBC application.
机译:悬浮等离子体喷涂(SPS)被鉴定为提高燃气轮机中使用的热屏障涂层(TBC)系统的承诺。特别地,SPS工艺实现的新出现的柱状微结构可能会带来有趣的TBC寿命。同时,与最先进的沉积技术相比,SPS工艺打开了导热系数的降低,这是下一代燃气轮机的主要问题之一,所谓的电子束物理气相沉积(EB-PVD)。本文研究了使用SPS和EB-PVD工艺进行柱状结构的氧化钇稳定的氧化锆(YSZ)涂层。根据柱状微结构在SPS工艺中容易适应的柱状微观结构,可以获得低导热率。在1100℃下,示出了对于SPS涂层的EB-PVD YSZ涂层的1.3Wm(-1)k-1的减少到约0.7Wm(-1)k-1。在SPS涂层的情况下,孔隙率较高的含量增加了通过厚度的热阻并降低导热性。通过等温循环试验研究了SPS YSZ涂层的寿命,与EB-PVD系列相比,表现出相同的或甚至更高的性能。使用用于EB-PVD TBC涂层的经典粘合涂层进行试验。最佳SPS涂层的热循环疲劳性能达到1000个循环,以β-(Ni,Pt)Al键涂层的AM1底物均持续1000个循环。在AM1底物上进行测试,具有Pt-扩散的γ-Ni /γ-Ni3Al键合涂层,其中对于柱状SPS YSZ涂层观察到多于2000次失效循环。通过柱状结构和孔隙率提供的高热顺应性允许达到高寿命,对TBC应用的承诺。

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