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Thermal cycling behavior and interfacial stability in thick thermal barrier coatings

机译:厚热障涂层的热循环行为和界面稳定性

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The thermal cycling behavior of thermal barrier coatings (TBCs), which were prepared by two different air-plasma spray (APS) guns of 9. MB and TriplexPro?-200, was investigated to understand the effects of the microstructure on the interfacial stability and fracture behavior of TBCs. The porosities of the top coats could be controlled by changing the gun, showing porosity of about 15% using the 9. MB and 19% using the TriplexPro?-200, which decreased slightly with thermal exposure. Defects, such as interlamellar cracks, vertical cracks, and intrasplat cracks, were freshly produced in both TBCs after thermal exposure, showing delamination in the case of 2000μm TBCs prepared using the TriplexPro?-200. The adhesive strength values of TBCs with 600 and 2000μm thicknesses were about 8 and 6. MPa, respectively, indicating that the adhesive strength values of TBCs were affected by the coating thickness, independent of the gun. The hardness values increased after thermal exposure, and the TBCs prepared using the TriplexPro?-200 showed higher values than those prepared using the 9. MB for both thicknesses. The toughness values were not dependent on the gun, only showing an effect from coating thickness. The increase in coating thickness enhanced the densification, resulting in higher hardness and toughness values, and the microstructure could be controlled by changing the gun.
机译:为了研究微观结构对界面稳定性和界面稳定性的影响,对热阻涂层(TBC)的热循环行为进行了研究,热阻涂层是由两种不同的9. MB空气等离子喷涂(APS)枪制备的。 TBC的断裂行为。可以通过更换喷枪来控制面漆的孔隙率,使用9. MB可以看到约15%的孔隙率,而使用TriplexPro™-200可以看到19%的孔隙率,随着热暴露的增加,孔隙率会略有下降。热暴露后,两个TBC中都新产生了层间裂纹,垂直裂纹和板内裂纹等缺陷,对于使用TriplexPro?-200制备的2000μmTBC而言,这表明出现分层。厚度为600和2000μm的TBC的粘合强度值分别约为8和6. MPa,这表明TBC的粘合强度值受涂层厚度的影响,与喷枪无关。暴露于热后硬度值增加,并且使用TriplexPro™-200制备的TBC的厚度均高于使用9. MB制备的TBC。韧性值不取决于喷枪,仅显示涂层厚度的影响。涂层厚度的增加增强了致密性,导致更高的硬度和韧性值,并且可以通过更换喷枪来控制微观结构。

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