首页> 外文期刊>Surface & Coatings Technology >Investigation of particle characteristics, composition and microstructure of LaxCe1 (-) O-x(2) (-) (x/2) thermal barrier coatings during supersonic atmospheric plasma spray using Box-Behnken design
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Investigation of particle characteristics, composition and microstructure of LaxCe1 (-) O-x(2) (-) (x/2) thermal barrier coatings during supersonic atmospheric plasma spray using Box-Behnken design

机译:使用Box-Behnken设计研究LaxCe1(-)O-x(2)(-)(x / 2)热障涂层在超音速大气等离子喷涂过程中的颗粒特征,组成和微观结构

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In this work, Box-Behnken design was used for investigating the influence of the main operating parameters (Argon flow rate: Ar, hydrogen flow rate: H-2 and arc current: I) on velocity and temperature of La2Ce2O7 inflight particle characteristics (i.e., mean velocity and temperature) during supersonic atmospheric plasma spraying (SAPS). The relationship between the particle characteristics and the composition and the microstructure of LC coating was investigated eventually. During spraying, the particle temperature and velocity were monitored by on-line diagnosis system. The results indicated that the particle velocity linearly increased with the increase of Ar, H-2 and I.I and the interaction between I and Ar and/or H-2 were the most important parameters which influenced the particle temperature. The content of Ce4+ in the as-sprayed coating rapidly decreased when the particle temperature increased from 2923 to 3036 degrees C, and then slowly decreased in the range of 3127-3218 degrees C. When the particle velocity fluctuation was less than 5%, the porosity of as-sprayed coatings decreased with the increase of particle temperature, however, it increased with the increase of particle velocity. (C) 2015 Elsevier B.V. All rights reserved.
机译:在这项工作中,采用Box-Behnken设计来研究主要运行参数(氩气流量:Ar,氢气流量:H-2和电弧电流:I)对La2Ce2O7机载粒子速度和温度的影响(即,平均速度和温度)在超音速大气等离子喷涂(SAPS)中进行。最终研究了LC涂层的颗粒特征,组成和微观结构之间的关系。在喷涂过程中,通过在线诊断系统监控颗粒温度和速度。结果表明,随着Ar,H-2和I.I的增加,粒子速度呈线性增加,而I与Ar和/或H-2之间的相互作用是影响粒子温度的最重要参数。当粒子温度从2923升高到3036摄氏度时,喷涂态涂层中Ce4 +的含量迅速降低,然后在3127-3218摄氏度的范围内缓慢降低。当粒子速度波动小于5%时,喷涂涂层的孔隙率随颗粒温度的升高而降低,但随颗粒速度的增加而增加。 (C)2015 Elsevier B.V.保留所有权利。

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