hvaf喷涂铁基非晶涂层的数值研究

IF 0.6 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
N. Wu, Tingting Li, J. Lian
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引用次数: 0

摘要

通过数值分析,预测了喷枪喷嘴的会聚截面几何形状对高速空气燃料热喷涂铁基非晶涂层工艺的影响。采用计算流体力学模型研究了28 ~ 56.8 mm长度的拉瓦尔喷嘴入口收敛段和不同形状的拉瓦尔喷嘴收敛段(直线和Vitosinski收敛曲线)的气体流场和飞行颗粒的行为。一方面,与收敛段的直线曲线相比,Vitosinski曲线的气焰流动特性变化呈现出均匀稳定的火焰;拉瓦尔喷嘴收敛截面的直线曲线形状比拉瓦尔喷嘴收敛截面的维托辛斯基曲线形状具有更高的颗粒温度。拉瓦尔喷嘴收敛截面直线曲线形状的粒子停留时间比拉瓦尔喷嘴收敛截面的维托辛斯基曲线形状的粒子停留时间长。喷嘴入口收敛段长度对颗粒温度有明显影响,颗粒停留时间随喷嘴入口收敛段长度的增加而增加。通过对颗粒熔化状态和颗粒速度的分析,预测了制备低孔隙率涂层的最佳喷丸配置(0.7 V)。通过实验验证了这些计算结果,使用预测的最佳枪形,用HVAF制造了低孔隙率(1.37%)的铁基AC。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
NUMERICAL INVESTIGATION OF HVAF-SPRAYED Fe-BASED AMORPHOUS COATINGS
A numerical analysis was performed to predict the effect of the convergent section geometry of a gun nozzle on the high-velocity air-fuel (HVAF) thermal spray Fe-based amorphous coating (AC) process. A computational fluid dynamics model was applied to investigate the gas-flow field and the behavior of in-flight particles at nozzle entrance convergent section length ranging from 28 mm to 56.8 mm and different shapes of the Laval nozzle convergent section (a straight line and Vitosinski convergence curve). On the one hand, the change in the gas-flame flow characteristics for the Vitosinski curve shows a uniform and stable flame compared with the straight-line curve in the convergent section. The straight-line curve shape of the Laval nozzle convergent section has a higher particle temperature compared with the Vitosinski-curve shape of the Laval nozzle convergent section. The particle dwell time for the straight-line curve shape of the Laval nozzle convergent section is longer than that for the Vitosinski curve shape of the Laval nozzle convergent section. On the other hand, the nozzle entrance convergent section length obviously affects the particle temperature, and the particle dwell time increases with the increasing nozzle entrance convergent section length. By analyzing both the melt status of the particles and particle velocity, the optimal gun configuration (0.7 V) producing low-porosity coatings was predicted. These calculations were experimentally verified by producing a low-porosity (1.37 %) Fe-based AC, fabricated with HVAF using the predicted optimal gun configuration.  
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来源期刊
Materiali in tehnologije
Materiali in tehnologije 工程技术-材料科学:综合
CiteScore
1.30
自引率
0.00%
发文量
73
审稿时长
4-8 weeks
期刊介绍: The journal MATERIALI IN TEHNOLOGIJE/MATERIALS AND TECHNOLOGY is a scientific journal, devoted to original papers and review scientific papers concerned with the areas of fundamental and applied science and technology. Topics of particular interest include metallic materials, inorganic materials, polymers, vacuum technique and lately nanomaterials.
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