Qiao Da, Man Jixin, Yan Wengao, Xue Beirao, Bian Xiangde, Zeng Wu
Advanced Gas Turbine Laboratory, Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
Materials (Basel). 2023 Dec 28;17(1):180. doi: 10.3390/ma17010180.
The growth stress induced by thermally grown oxide (TGO) is one of the main reasons for the failure of thermal barrier coatings (TBCs). In this study, the failure behavior of TBCs was examined based on different growth modes of TGO. A TBC thermo-mechanical model with a simplified sinusoidal interface morphology was established by the secondary development of a numerical simulation. The plasticity and creep behavior of materials were considered. Based on the subroutine development, the non-uniform growth of the TGO layer was realized. Cohesive elements were also applied to the TC/TGO interface. The stress distribution and evolution at the TC/TGO interface were investigated. Then, the cracking behavior near the interface was studied. The results show that lateral growth causes the off-valley site to replace the previous off-peak site as a vulnerable site. The non-uniform growth accelerates damage in the off-valley site, which leads to a change in the failure behavior. These results will provide significant guidance for understanding the TBC failure and the development of advanced TBCs.
热生长氧化物(TGO)引起的生长应力是热障涂层(TBCs)失效的主要原因之一。在本研究中,基于TGO的不同生长模式对TBCs的失效行为进行了研究。通过数值模拟的二次开发,建立了具有简化正弦界面形态的TBC热机械模型。考虑了材料的塑性和蠕变行为。基于子程序开发,实现了TGO层的非均匀生长。粘结单元也应用于TC/TGO界面。研究了TC/TGO界面处的应力分布和演化。然后,研究了界面附近的开裂行为。结果表明,横向生长导致谷底位置取代先前的峰谷位置成为易损位置。非均匀生长加速了谷底位置的损伤,从而导致失效行为的改变。这些结果将为理解TBC失效和先进TBCs的开发提供重要指导。