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Thermal cyclic performance of NiAl/alumina-stabilized zirconia thermal barrier coatings deposited using a hybrid arc and magnetron sputtering system

机译:使用混合电弧和磁控溅射系统沉积的NiAl /氧化铝稳定的氧化锆热障涂层的热循环性能

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In the present work, a hybrid arc/sputter deposition system is used to deposit alumina-stabilized zirconia, (ASZ) thermal barrier coatings. An initial NiAl bond coat is deposited on the nickel super alloy substrates, in the same coating system, by arc ion plating alone. The as-deposited ASZ coatings have a dense columnar structure. From X-ray diffractometry (XRD), it is found that the as-deposited ASZ films are almost entirely tetragonal. This is believed to result from the relatively high concentration of aluminum (10 at.%) in the ASZ films. Thermal testing is carried out over numerous cycles, each consisting of 30 and 10 min at 1100 degrees C and ambient, respectively. During thermal testing, a significant amount of the tetragonal phase is transformed to monoclinic. Furthermore a significant number of cracks, both parallel and perpendicular to the substrate surface, are found to occur in the ASZ layer as a result of tensile and compressive thermal stresses. Although a thermally grown oxide (TGO) layer between the top and bond coat, and Kirkendall voids in the interfacial region between substrate and bond coat occur in this coating system, the failure occurs principally as a result of parallel cracks which form just above the TGO. After 200 thermal cycles, a great portion of the topcoat has failed. The fort-nation of cracks, and the subsequent coating failure, is likely to result from the dense coatings being unable to accommodate the thermal stresses parallel to the surface during the cycling tests. (c) 2006 Elsevier B.V. All rights reserved.
机译:在当前工作中,混合电弧/溅射沉积系统用于沉积氧化铝稳定的氧化锆(ASZ)热障涂层。在同一涂层系统中,仅通过电弧离子镀将初始的NiAl粘结涂层沉积在镍超合金基材上。沉积的ASZ涂层具有致密的柱状结构。根据X射线衍射法(XRD),发现沉积的ASZ膜几乎完全是四方的。据信这是由于ASZ膜中铝的浓度相对较高(10 at。%)。进行多次热测试,每个循环分别在1100摄氏度和环境温度下进行30分钟和10分钟。在热测试过程中,大量的四方相转变为单斜晶。此外,由于拉伸和压缩热应力,在ASZ层中发现了许多平行于和垂直于基板表面的裂纹。尽管在此涂层系统中发生了表面涂层和粘结层之间的热生长氧化物(TGO)层,以及基底和粘结层之间的界面区域中的Kirkendall空隙,但故障的发生主要是由于在TGO上方刚形成的平行裂纹。经过200次热循环后,大部分面漆失效。裂纹的形成和随后的涂层破坏很可能是由于致密涂层在循环测试期间无法适应平行于表面的热应力而导致的。 (c)2006 Elsevier B.V.保留所有权利。

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