首页> 外文会议>IUMRS International Conference in Asia;IUMRS-ICA; 20060910-14;20060910-14; Jeju(KR);Jeju(KR) >Bonding Strength of Top Coat and Its Fracture Mechanism in Thermal Barrier Coatings with Thermal Fatigue
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Bonding Strength of Top Coat and Its Fracture Mechanism in Thermal Barrier Coatings with Thermal Fatigue

机译:热疲劳热障涂层中面涂层的结合强度及其断裂机理

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The bonding strength of top coat in thermal barrier coatings (TBCs) with different bond layers has been measured with thermal fatigue and its fracture behavior has been investigated considering the effects of a thermally grown oxide (TGO) layer and resintering of the top coat. Two kinds of TBCs with different thicknesses of approximately 80 and 280 urn in bond layer were prepared by two different methods of air plasma spray (APS) and high velocity oxygen flow (HVOF). Top layer (3Y-TZP) was coated on both bond layers using the APS process. Thermal fatigue tests were conducted at temperature of 1100℃ with dwell time of 10 hr, which tests were done till 20 cycles. The HVOF process provides a relatively homogeneous microstructure in the bond layer, compared with the APS process. The formation of TGO layer is influenced by the exposed time, independent of the bond layer thickness and the bond layer species. TBCs with the bond layer prepared by the APS process show higher bonding strength than those by the HVOF process in as-prepared TBCs (before thermal fatigue), showing 15-18 MPa for the APS process and 13-16 MPa for the HVOF process. Whereas the fracture in TBCs with the HVOF bond coat are originated at the interface between the top coat and the bond coat, the fracture within the top coat in TBCs with the APS bond coat However, after the thermal fatigue, the bonding strength value is increased to 18 - 20 MPa in both cases even though the TGO layer is formed, showing the fracture paths within the top coat in both cases.
机译:通过热疲劳测量了具有不同粘结层的热障涂层(TBC)中面漆的粘结强度,并考虑了热生长氧化物(TGO)层和面漆的涂脂性,研究了其断裂行为。通过两种不同的空气等离子体喷涂(APS)和高速氧气流(HVOF)方法制备了两种粘结层厚度分别为80和280 um的TBC。使用APS工艺将顶层(3Y-TZP)涂覆在两个粘结层上。热疲劳试验在1100℃的温度下进行,停留时间为10小时,该试验进行到20个循环。与APS工艺相比,HVOF工艺在粘结层中提供了相对均匀的微观结构。 TGO层的形成受暴露时间的影响,而不受粘结层厚度和粘结层种类的影响。在制备的TBC中(热疲劳之前),通过APS工艺制备的具有粘结层的TBC的粘结强度高于通过HVOF工艺获得的粘结强度(APS工艺显示为15-18 MPa,HVOF工艺显示为13-16 MPa)。带有HVOF粘结层的TBC中的断裂起源于面漆和粘结层之间的界面,而带有APS粘结层的TBC中的面涂层内部断裂是在热疲劳之后,粘结强度值增加的即使形成了TGO层,在两种情况下都保持在18至20 MPa的压力,这两种情况都显示了面漆内的断裂路径。

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