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Numerical investigation on the cracking behaviors of thermal barrier coating system under different thermal cycle loading waveforms

机译:不同热循环加载波形下热阻涂层系统裂缝行为的数值研究

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The influence of a thermal cycle fatigue (TCF) loading waveform on cracking behaviors of an atmospheric plasma-sprayed thermal barrier coating (TBC) system was numerically studied using the commercial software. Results showed that the TCF loading waveform considerably affects stress distributions in the TBCs and is the leading factor for the initiation and propagation of cracks in TBCs samples. Under triangular load waveform, the cracks initiate and grow in top-coat (TC) layers. However, under trapezoidal load waveform, the cracks are likely to initiate at an off-valley location and propagate along the TC/thermally-grown-oxide (TGO) interface, causing the complete spallation of the TC layer. Furthermore, the influences of the prior time and holding time on the crack initiation and propagation under the trapezoidal loading conditions were discussed, respectively. Interfacial cracks are likely to initiate when the prior time is prolonged. Under the trapezoidal loading conditions, the location of crack initiation moves from the peak to the off-valley location of a TC/TGO interface as holding time increases. Under a long holding time of the trapezoidal loading conditions, an improved spray quality of TC/TGO interface can increase the service life of TBCs.
机译:使用商业软件在数值研究了热循环疲劳(TCF)加载波形对大气等离子体喷涂的热阻挡涂层(TBC)系统的开裂行为的影响。结果表明,TCF负荷波形显着影响TBC中的应力分布,是TBCS样品中裂缝引发和传播的主要因素。在三角形负荷波形下,裂缝在顶层(TC)层中引发并生长。然而,在梯形载荷波形下,裂缝可能在缺口位置启动并沿着Tc /散热氧化物(TGO)界面传播,从而导致TC层的完全剥落。此外,分别讨论了前一时间和保持时间对梯形载荷条件下的裂纹启动和繁殖的影响。当延长之前的时间延长时,界面裂缝可能会发起。在梯形装载条件下,裂纹启动的位置从峰值移动到TC / TGO接口的谷谷位置,因为保持时间增加。在梯形装载条件的长控时间下,TC / TGO接口的改善的喷涂质量可以增加TBC的使用寿命。

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