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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Influence of Titanium in Nickel-Base Superalloys on the Performance of Thermal Barrier Coatings Utilizing γ-γ' Platinum Bond Coats
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Influence of Titanium in Nickel-Base Superalloys on the Performance of Thermal Barrier Coatings Utilizing γ-γ' Platinum Bond Coats

机译:镍基高温合金中的钛对利用γ-γ'铂键涂层的热障涂层性能的影响

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Titanium is a key element in nickel-base superalloys needed with aluminum to achieve the desired volume fraction of the strengthening y' -phase. However, depending upon its concentration, titanium can degrade the adherence of aluminum oxide by forming TiO_2 particles near the oxide-metal interface. This effect is extended to thermal barrier coating systems where in this case, the bond coat replaces the superalloy as the underlying substrate. Noting that the onset of failure of thermal barrier coating systems coincides with the first spall of the thermally grown oxide, titanium level in the superalloy can have an important effect on the useful life of the coating. Therefore, this study was undertaken to examine the effect of titanium on the performance of a thermal barrier coating system. Included in the study were two Ni-base superalloys with similar chemical composition except for the Ti content and a Pt-containing bond coat consisting of y' + y-phases all top coated with zirconia stabilized by 7 wt % yttria. Coating performance was evaluated from thermal exposure tests at 1150°C with a 24 h cycling period to room temperature. Various electron-optical techniques were used to characterize the microstructure. The coating system on the low-Ti alloy was found to outperform that on the high-Ti alloy. However, for both alloys, failure was observed to occur by loss of adhesion between the thermally grown oxide and underlying bond coat.
机译:钛是铝所需要的镍基高温合金中的关键元素,以实现所需的强化y'相体积分数。然而,取决于其浓度,钛可通过在氧化物-金属界面附近形成TiO_2颗粒而降低氧化铝的附着力。这种效果扩展到了热障涂层系统,在这种情况下,粘结层取代了超合金作为底层基材。注意隔热涂层系统失效的发生与热生长氧化物的第一次剥落相吻合,因此高温合金中的钛含量可能对涂层的使用寿命产生重要影响。因此,进行了这项研究以检查钛对热障涂层系统性能的影响。该研究包括两种化学成分相似的镍基高温合金,除了钛含量和由y'+ y相组成的含Pt粘结层外,上面均涂有以7 wt%的氧化钇稳定的氧化锆。从1150°C的热暴露测试评估涂层性能,并在24 h循环时间内达到室温。各种电子光学技术被用来表征微观结构。发现低钛合金上的涂层系统优于高钛合金上的涂层系统。然而,对于两种合金,都观察到由于热生长的氧化物和下面的粘结层之间的粘附力损失而发生破坏。

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    Center for Engineering Research and Center of Research Excellence in Corrosion, Research Institute, King Fahd University of Petroleum and Minerals, P.O. Box 1639, Dhahran 31261, Saudi Arabia;

    Center for Engineering Research and Center of Research Excellence in Corrosion, Research Institute, King Fahd University of Petroleum and Minerals, P.O. Box 1639, Dhahran 31261, Saudi Arabia;

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