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Capturing the Competing Influence of Thermal and Mechanical Loads on the Strain of Turbine Blade Coatings via High Energy X-rays

机译:通过高能量X射线捕获热电和机械负荷对涡轮叶片涂层菌株的竞争影响

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This paper presents findings of synchrotron diffraction measurements on tubular specimens with a thermal barrier coating (TBC) system applied by electron beam physical vapor deposition (EB-PVD), having a thermally grown oxide (TGO) layer due to aging in hot air. The diffraction measurements were in situ while applying a thermal cycle with high temperature holds at 1000 °C and varying internal air cooling mass flow and mechanical load. It was observed that, during high temperature holds at 1000 °C, the TGO strain approached zero if no mechanical load or internal cooling was applied. When applying a mechanical load, the TGO in-plane strain (e22) changed to tensile and the out of plane TGO strain (e11) became compressive. The addition of internal cooling induced a thermal gradient, yielding a competing effect, driving the e22 strain to compressive and e11 strain to tensile. Quantifying TGO strain variations in response to competing factors will provide a path to controlling the TGO strain, and further improving the lifetime assessment and durability design strategies for TBC systems.
机译:本文介绍了通过电子束物理气相沉积(EB-PVD)施加的热阻挡涂层(TBC)系统的管状试样上的同步调节衍射测量的发现,所述热屏蔽(EB-PVD),由于在热空气中老化而具有热生长的氧化物(TGO)层。衍射测量原位在施加高温下的热循环,并在1000℃下保持并改变内部空气冷却质量流量和机械载荷。观察到,在1000℃的高温下保持,如果没有施加机械负载或内部冷却,则TGO应变接近零。当施加机械载荷时,TGO在平面菌株(E22)变为拉伸,并且平面TGO菌株(E11)变得压缩。添加内部冷却诱导热梯度,产生竞争效果,驱动E22菌株对压缩和E11应变的拉伸。量化TGO应对竞争因素的响应变化将提供控制TGO应变的路径,并进一步提高TBC系统的寿命评估和耐用性设计策略。

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