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Thermal Fatigue of Thermal Barrier Coatings by Atmospheric Plasma Spraying

机译:大气等离子喷涂热阻挡涂层的热疲劳

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Turbine vanes and blades are the most intensively loaded elements in that they are subjected to a large variety of mechanical and high temperature loads. The thermal barrier coatings (TBCs) are widely used on different hot components of gas turbines, as blades and vanes, for both, power engineering as well as aeronautical applications. Currently, two methods are used for depositing TBCs on substrate, which are plasma spray (PS) and electron beam-physical vapor deposition (EB-PVD). A typical TBCs system consists of two thin coatings, including a ceramic coating and a metallic bond coat. Despite considerable efforts, the highly desirable prediction of their life time is still a demanding task. The PS coating was focused on in this work. Firstly, the TBCs systems are multiplayer material systems. The material properties are not easily determined, such as Young's modulus of the top-coating of TBCs. Using the resonant frequency and the composite beam theory, the Young's modulus of APS TBCs was gotten under from room temperature to 1150°C. Then using a commercial finite-element program, the model geometry is that of a cylinder specimen. The interface region between bond coat and top coating is modeled and meshed with a sinusoidal geometry. The temperature was designed and cycled over a range from room temperature to 1050°C. The force-air-cooling was designed to form temperature gradient across the thickness of TBCs. Finally, the fatigue life of TBCs was predicated. The maximum relative error is 20.1%.
机译:涡轮机叶片和刀片是最强烈的装载元件,因为它们受到大量机械和高温载荷。热阻挡涂层(TBC)广泛用于燃气轮机的不同热部件,作为叶片和叶片,适用于电力工程以及航空应用。目前,两种方法用于沉积基板上的TBC,其是等离子体喷雾(PS)和电子束物理气相沉积(EB-PVD)。典型的TBCS系统由两种薄涂层组成,包括陶瓷涂层和金属粘合涂层。尽管努力相当努力,但他们的生命时间的高度理想预测仍然是一个苛刻的任务。在这项工作中,PS涂层集中于。首先,TBCS系统是多人材料系统。材料特性不容易确定,例如TBC的顶涂的杨氏模量。使用谐振频率和复合光束理论,将APS TBC的杨氏模量从室温下降到1150℃。然后使用商业有限元程序,模型几何形状是圆筒样品的几何形状。用正弦几何形状建模和啮合粘合涂层和顶涂层之间的界面区域。将温度从室温至1050℃的范围内设计并循环。设计力 - 空气冷却以在TBC的厚度上形成温度梯度。最后,预测TBC的疲劳寿命。最大相对误差为20.1%。

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