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Comparison of damage evolution during thermal cycling in a high purity nano and a conventional thermal barrier coating

机译:高纯度纳米热循环过程中损伤进化的比较及传统的热阻挡涂层

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AbstractThermal barrier coatings (TBCs), consisting of a ceramic top coat and a metallic bond coat, offer resistance against high temperature degradation of turbine components. Cyclic oxidation of the bond coat, thermal stresses due to their thermal mismatches during cyclic operations, and sintering of the top coat are considered to be the common ways by which thermal barrier coatings fail. To reduce sintering, a nano structured high purity yttria stabilized zirconia (YSZ) was developed. The focus of this work is to compare the damage development of such high purity nano YSZ TBC during thermal cycling with a conventional YSZ TBC. Thermal cyclic fatigue (TCF) tests were conducted on both the TBC systems between 100°C and 1100°C with a 1h hold time at 1100°C. TCF test results showed that conventional YSZ TBC exhibited much higher life compared to the high purity nano YSZ TBC. The difference in the lifetime is explained by the use of microstructural investigations, crack length measurements along the cross-section and the difference in the elastic modulus. Furthermore, stress intensity factors were calculated in order to understand the difference(s) in the damage development between the two TBC systems.Highlights?Thermal cyclic fatigue life
机译:<![cdata [ 抽象 热障涂层(TBC),由陶瓷顶部涂层和金属粘合涂层组成,提供耐高采烈的阻力涡轮部件的温度劣化。键合涂层的循环氧化,由于它们在循环操作期间引起的热应力,并且顶层涂层的烧结被认为是热阻挡涂层失效的常见方式。为了减少烧结,开发了一种纳米结构高纯度ytTRIa稳定的氧化锆(YSZ)。这项工作的焦点是在用常规YSZ TBC热循环期间比较这种高纯度纳米YSZ TBC的损伤。在1100℃下的1H保持时间为100℃和1100℃之间的TBC系统上进行热循环疲劳(TCF)试验。 TCF测试结果表明,与高纯度纳米YSZ TBC相比,传统的YSZ TBC呈现更高的寿命。通过使用微观结构研究,沿着横截面的裂缝长度测量和弹性模量的差异来解释寿命的差异。此外,计算应力强度因子,以便了解两个TBC系统之间的损伤发展中的差异。 突出显示 热循环疲劳寿命

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