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首页> 外文期刊>Plasma Chemistry and Plasma Processing >Melting Refining Mechanisms in Supersonic Atmospheric Plasma Spraying
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Melting Refining Mechanisms in Supersonic Atmospheric Plasma Spraying

机译:超音速等离子喷涂的熔炼机理

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摘要

In recent years, Yttria-stabilized zirconia based thermal barrier coatings (TBCs) are deposited by newly-developed high-efficiency supersonic atmospheric plasma spraying (SAPS) technology. The final microstructure of the plasma-sprayed coatings is strongly dependent on the size distribution of spray particles. It has been corroborated through experiments that there is a special phenomenon of particle melting refining in SAPS, as compared with the conventional atmospheric plasma spraying (APS). This phenomenon greatly affects the final particle size and distribution, which has not been explained reasonably up to now. Therefore, it is necessary to investigate the melting refining behavior of in-flight particles to control the particle size and to analyze the coating properties. In this paper, the breakup of particle is presented to characterize the phenomenon of particle melting refining, and the peak of size distribution becomes bigger with increasing the spray distances, which is explained by collision-coalescence. Furthermore, based on the maximum entropy formalism, the particle-size distribution is calculated and the result is in good accordance with the plasma spraying experiment results, which verifies the mechanism analysis presented in this paper. This work could provide more efficient applications of the SAPS technology in high-performance TBCs.
机译:近年来,通过新开发的高效超音速大气等离子喷涂(SAPS)技术沉积了氧化钇稳定的氧化锆基热障涂层(TBC)。等离子喷涂涂层的最终微观结构在很大程度上取决于喷涂颗粒的尺寸分布。通过实验证实,与传统的大气等离子喷涂(APS)相比,SAPS中存在一种特殊的颗粒熔化细化现象。这种现象极大地影响了最终的粒径和分布,到目前为止还没有进行合理的解释。因此,有必要研究飞行中颗粒的熔炼行为,以控制颗粒大小并分析涂层性能。本文提出了颗粒破裂现象,以表征颗粒熔融细化的现象,随着喷雾距离的增加,粒径分布的峰值变大,这可以通过碰撞-聚结来解释。此外,基于最大熵形式,计算出了粒径分布,结果与等离子喷涂实验结果吻合较好,验证了本文的机理分析。这项工作可以为高性能TBC提供更有效的SAPS技术应用。

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