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Development of Particle Interface Bonding in Thermal Spray Coatings: A Review

机译:热喷涂涂层中粒子界面粘接的开发:综述

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Thermal spray ceramic coatings deposited following the conventional routine exhibit a typical lamellar structure with a limited interface bonding ratio. The bonding between particles in the coating dominates coating properties and performance. In this review paper, the bonding formation at the interface between thin lamellae in the coating is examined. The effect of spray parameters on the bonding ratio is presented to reveal the main droplet parameters controlling bonding formation, which reveals that the temperature of the spray particle rather than its velocity dominates the bonding formation. The limitation to increase significantly the ceramic particle temperature inherent to the thermal spray process leads to the observation of a maximum bonding ratio of about 32%, while through controlling the surface temperature of the coating prior to molten droplet impact, the bonding at the lamellar interface can be significantly increased. Consequently, it is shown that with the proper selection of deposition conditions and control of the deposition temperature, the bonding ratio of ceramic deposits can be altered from a maximum of 32% for a conventional deposit to a maximum of 100%. Such wide adjustability of the lamellar bonding opens new possibilities for using thermal spray coatings in various applications requiring different microstructures and properties. The examination of recent studies shows that the bonding control makes it possible to fabricate porous deposits through surface-molten particles. Such an approach could be applied for the fabrication of porous materials, the deposition of high temperature abradable ceramic coatings, and for forming functional structured surfaces, such as a surface with super-hydrophobicity or a solid oxide fuel cell cathode interface with high specific surface area and high catalytic performance. Furthermore, complete interface bonding leads to crystalline structure control of individual splats through epitaxial grain growth.
机译:在常规程序之后沉积的热喷涂陶瓷涂层具有有限的界面粘合比的典型层状结构。涂层中颗粒之间的粘合主要是涂层性能和性能。在该综述论文中,检查涂层中薄膜之间的界面处的粘接形成。提出了喷射参数对键合比的影响,以揭示控制粘合形成的主液滴参数,揭示了喷雾颗粒的温度而不是其速度主导粘合形成。局限性提高显着增加了热喷涂工艺所固有的陶瓷粒子温度导致最大粘合率约为32%,而通过在熔融液滴冲击之前控制涂层的表面温度,在层状界面处的粘合可以显着增加。 Consequently, it is shown that with the proper selection of deposition conditions and control of the deposition temperature, the bonding ratio of ceramic deposits can be altered from a maximum of 32% for a conventional deposit to a maximum of 100%.层状粘接的这种可调节性打开了在需要不同微观结构和性质的各种应用中使用热喷涂涂层的新可能性。近期研究的检查表明,粘合控制使得可以通过表面熔融颗粒制造多孔沉积物。这种方法可以应用于制造多孔材料,高温可磨损陶瓷涂层的沉积,以及用于形成具有具有超级疏水性的表面的功能性结构化表面或具有高比表面积的固体氧化物燃料电池阴极界面和高催化性能。此外,通过外延晶粒生长,完全界面粘合导致各个Splats的晶体结构控制。

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