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预热对激光重熔热障涂层/镍基单晶高温合金多层体系微观结构演变的影响

Influence of Preheating on the Microstructure Evolution of Laser Re-Melting Thermal Barrier Coatings/Ni-Based Single Crystal Superalloy Multilayer System.

作者信息

Fan Zhengjie, Duan Wenqiang, Zhang Xiaofeng, Mei Xuesong, Wang Wenjun, Cui Jianlei

机构信息

State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an 710049, China.

Guangdong Institute of New Materials, Guangzhou 510650, China.

出版信息

Materials (Basel). 2019 Sep 22;12(19):3088. doi: 10.3390/ma12193088.

Abstract

Laser surface re-melting (LSR) is a well-known method to improve the properties of atmospheric plasma-spraying thermal barrier coatings (APS TBCs) by eliminating the voids, incompletely melted particles and layered-structure. Laser energy density should be carefully selected to reduce the exposed thermal damage of the underlying single crystal (SX) matrix. Therefore, the purpose of this paper was to identify the effect of introducing induction heating to laser modifying of APS TBCs coated on Ni-based SX superalloy. The results indicated that the preheating of the substrate can lower the laser energy threshold that is required for continuously re-melting the coating. It proved that, in LSR processing of a APS TBCs/ SX matrix multilayer system, the combined method of adopting the low laser energy and preheating at elevated temperature is an effective means of minimizing the cracking susceptibility of top ceramic coating, resulting from decreasing the mismatch strain between the re-melted layer and residual APS TBCs, which can significantly improve the segmented crack condition in terms of crack dimension and crack density. Moreover, this combined method can remarkably lower heat input into an SX matrix and correspondingly the interface stored energy induced by pulsed laser thermal shock, which can effectively lower the tendency for surface recrystallization after the subsequent heat treatment.

摘要

激光表面重熔(LSR)是一种通过消除气孔、未完全熔化的颗粒和层状结构来改善大气等离子喷涂热障涂层(APS TBCs)性能的知名方法。应谨慎选择激光能量密度,以减少底层单晶(SX)基体的热损伤暴露。因此,本文的目的是确定引入感应加热对涂覆在镍基SX高温合金上的APS TBCs进行激光改性的影响。结果表明,基体预热可以降低连续重熔涂层所需的激光能量阈值。结果证明,在APS TBCs/SX基体多层系统的LSR处理中,采用低激光能量和高温预热的组合方法是使顶部陶瓷涂层开裂敏感性最小化的有效手段,这是通过降低重熔层与残余APS TBCs之间的失配应变实现的,这可以在裂纹尺寸和裂纹密度方面显著改善分段裂纹情况。此外,这种组合方法可以显著降低输入到SX基体中的热量,并相应降低由脉冲激光热冲击引起的界面储能,这可以有效降低后续热处理后表面再结晶的倾向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8583/6803973/a7aec7c504df/materials-12-03088-g001.jpg

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