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Prediction of critical rupture of plasma-sprayed yttria stabilized zirconia thermal barrier coatings under burner rig test via finite element simulation and in-situ acoustic emission technique

机译:通过有限元模拟和原位声学发射技术预测燃烧室喷涂型燃烧室喷涂稳定氧化锆热阻挡涂层的临界破裂

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摘要

In the current work, the yttria stabilized zirconia (YSZ) thermal barrier coatings (TBCs) have been fabricated by atmospheric plasma spraying. The failure mechanism of the TBCs during burner rig test (BRT) has been investigated via finite element modeling (FEM) and in-situ acoustic emission (AE) technique systematically. During the BRT, the oxygen-propane flame was heated onto the surface of the coating samples with the dwell time 3 min, then the surface and the backside of the coating samples were cooled by the compressed air simultaneously for 3 min. This can be viewed as one thermal cycle. Then repeat the same heating and cooling process. The history and distribution of the temperature along the through-thickness direction of the coating samples has been obtained via FEM, and the residual stress at different stages has been also calculated. The FEM results have indicated that large tensile stress and compressive stress existed at the heating stage and cooling stage of each thermal cycle, respectively. The crack propagation tends to occur at the initial period of heating stage in the BRT process. The in-situ acquisition of the AE signals during the BRT has also been adopted. The crack propagation patterns have been obtained based on the analysis of AE signals. The filtering technique has been used to exclude the disturbance of the noise in the process of BRT in order to capture the actual and effective AE signals which represent the crack propagation and the deformation of the coating systems. Based on the characteristic waveform of effective AE signals, the Fast Fourier Transformation (FFT) and wavelet transformation has been adopted to analyze the key distribution range of the amplitude and frequency. The investigation results indicate that the acquired AE signals during BRT mainly include signals which came from the plastic deformation of the substrate and creep of each layers, propagation of the vertical crack and propagation of the interfacial cracks (horizon
机译:在当前的工作中,通过大气等离子体喷涂制造了钇稳定的氧化锆(YSZ)热阻挡涂层(TBCS)。通过有限元建模(FEM)和系统地,通过有限元建模(FEM)和原位声学发射(AE)技术来研究燃烧器钻机测试期间TBC的故障机理。在BRT期间,使用停留时间3分钟将氧气 - 丙烷火焰加热到涂层样品的表面上,然后通过压缩空气同时将涂层样品的表面和背面同时冷却3分钟。这可以被视为一个热循环。然后重复相同的加热和冷却过程。通过FEM获得沿涂层样品的贯穿厚度方向的历史和分布,并且还计算了不同阶段的残余应力。有组件结果表明,分别在每个热循环的加热阶段和冷却阶段存在大的拉伸应力和压缩应力。在BRT工艺中的加热阶段的初始期间倾向于发生裂缝繁殖。还采用了原位采集AE信号。基于对AE信号的分析获得了裂缝传播模式。过滤技术已被用于排除BRT过程中噪声的干扰,以捕获表示裂纹传播和涂覆系统的变形的实际和有效的AE信号。基于有效AE信号的特征波形,已经采用了快速傅里叶变换(FFT)和小波变换来分析幅度和频率的关键分布范围。调查结果表明,BRT期间所获得的AE信号主要包括来自基板的塑性变形的信号和每个层的蠕变,垂直裂缝的传播和界面裂缝的传播(地平线

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