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Numerical investigations on cold gas dynamic spray process with nano- and microsize particles

机译:纳米和微米级颗粒冷气动态喷涂过程的数值研究

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The particle velocity in cold gas dynamic spraying (CGDS) is one of the most important factors that can determine the properties of the bonding to the substrate. In this paper, the acceleration process of microscale and sub-microscale copper (Cu) and platinum (Pt) particles inside and outside De-Laval-Type nozzle is investigated. A numerical simulation is performed for the gas-particle two phase flow with particle diameter ranging from 100 nm to 50 μm, which are accelerated by carrier gas nitrogen and helium in a supersonic De-Laval-type nozzle. The carrier gas velocity and pressure distributions in the nozzle and outside the nozzle are illustrated. The centerline velocity for two types of particles, Pt and Cu, are demonstrated. It is observed that the existence of the bow shocks near the substrate prevents the smaller size particles (less than 0.5 μm) from penetrating, thus leads to poor coating in the actual practices. Furthermore, the extended straight section may have different optimal length for different size particles, and even may be unnecessary for sub-microsize particles.
机译:冷气动态喷涂(CGDS)中的粒子速度是最重要的因素之一,可以决定与基材的粘合性能。本文研究了De-Laval型喷嘴内部和外部的微米级和亚微米级铜(Cu)和铂(Pt)颗粒的加速过程。对粒径在100 nm至50μm范围内的气固两相流进行了数值模拟,这些流在超音速De-Laval型喷嘴中被载气氮气和氦气加速。示出了喷嘴内和喷嘴外的载气速度和压力分布。演示了两种类型的粒子Pt和Cu的中心线速度。可以发现,在基板附近存在弓形冲击,可防止较小尺寸的颗粒(小于0.5μm)渗透,从而导致实际操作中的涂层不良。此外,对于不同尺寸的颗粒,延伸的笔直部分可以具有不同的最佳长度,甚至对于亚微尺寸的颗粒而言甚至可以不是必需的。

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