主工作气和载粉气布置对冷喷涂气粒流动动力学的启示

IF 3.3 3区 材料科学 Q2 MATERIALS SCIENCE, COATINGS & FILMS
Wenpeng Wan, Chunjie Huang, Jie Luo, Zhengmao Zhang, Yaxin Xu, Wenya Li
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引用次数: 0

摘要

在冷喷涂过程中,载粉气体与主工作气体之间的相互作用通过影响气体流动动力学和颗粒行为对涂层质量和沉积效率起着重要作用。然而,关于不同气流设计对气体流场和粒子加速行为影响的比较研究仍然有限。本文通过数值模拟系统分析了两种气流的同轴、45°倾斜和垂直三种关键形态。两种气流的配置对喷枪上游的气体温度分布和颗粒加速行为有显著影响,但对喷枪下游的速度场和颗粒对基体的冲击面积影响最小。当两种气体呈45°夹角放置时,对载粉气体和颗粒的预热效果最佳。然而,这种布置也导致了最严重的颗粒回流,增加了颗粒与壁面碰撞的概率,从而增加了喷嘴堵塞的风险。相比之下,当气流垂直排列时,颗粒回流现象和喷嘴堵塞风险大大降低,当两种气体同轴排列时,这种风险进一步降低。因此,对于容易堵塞喷嘴的低熔点粉末(如铝),建议同轴或垂直气体布置。对于不太可能堵塞喷嘴的高熔点颗粒(如铜),优选45°气体布置,以优化颗粒冲击温度,从而提高涂层质量。结果对粉末载气和主工作气体之间三种不同排列的优点和局限性提供了有价值的见解,扩大了对它们对颗粒沉积效率和涂层质量的影响的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Insights Into the Arrangement of Main Working Gas and Powder Carrier Gas on Gas–Particle Flow Dynamics in Cold Spraying

During cold spraying, the interaction between the powder carrier gas and the main working gas plays an important role in determining coating quality and deposition efficiency by influencing both gas flow dynamics and particle behavior. However, comparative studies examining the effects of different gas stream designs on gas flow fields and particle acceleration behaviors remain limited. In this study, three key configurations of the two gas streams—coaxial, 45° inclined, and perpendicular—are systematically analyzed through numerical modeling. The configuration of the two gas streams considerably affects the gas temperature distribution and particle acceleration behavior upstream of the spraying gun but exhibits minimal influence on the velocity field downstream and the particle impact area on the substrate. When the two gases are placed at a 45° angle, the preheating effect on the powder carrier gas and particles is optimal. However, this arrangement also leads to the most severe particle backflow, increasing the probability of particle–wall collisions, which in turn increases the risk of nozzle blockage. In comparison, when the gas streams are arranged perpendicular to each other, the particle backflow phenomenon and nozzle clogging risk drastically decrease, and this risk is further minimized when the two gases are coaxial. Therefore, for low-melting-point powders that are prone to nozzle clogging (such as aluminum), coaxial or perpendicular gas arrangements are recommended. For high-melting-point particles that are less likely to clog the nozzle (such as copper), a 45° gas arrangement is preferred to optimize particle impact temperature, thereby improving coating quality. The outcomes present valuable insights into the benefits and limitations of the three distinct arrangements between the powder carrier gas and the main working gas, broadening the understanding of their effects on particle deposition efficiency and coating quality.

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来源期刊
Journal of Thermal Spray Technology
Journal of Thermal Spray Technology 工程技术-材料科学:膜
CiteScore
5.20
自引率
25.80%
发文量
198
审稿时长
2.6 months
期刊介绍: From the scientific to the practical, stay on top of advances in this fast-growing coating technology with ASM International''s Journal of Thermal Spray Technology. Critically reviewed scientific papers and engineering articles combine the best of new research with the latest applications and problem solving. A service of the ASM Thermal Spray Society (TSS), the Journal of Thermal Spray Technology covers all fundamental and practical aspects of thermal spray science, including processes, feedstock manufacture, and testing and characterization. The journal contains worldwide coverage of the latest research, products, equipment and process developments, and includes technical note case studies from real-time applications and in-depth topical reviews.
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