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Microstructure design for blended feedstock and its thermal durability in lanthanum zirconate based thermal barrier coatings

机译:混合原料的微观结构设计及其在锆酸镧镧基热障涂层中的热耐久性

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摘要

The effects of microstructure design on the lifetime performance of lanthanum zirconate (La2Zr2O7; LZO)-based thermal barrier coatings (TBCs) were investigated through various thermal exposure tests, such as furnace cyclic thermal fatigue, thermal shock, and jet engine thermal shock. To improve the thermal durability of LZO-based TBCs, composite top coats using two feedstock powders of LZO and 8 wt.% yttria-doped stabilized zirconia (8YSZ) were prepared by mixing in different volume ratios (50:50 and 25:75, respectively). In addition, buffer layers were introduced in layered LZO-based TBCs deposited using an air-plasma spray method. The TBC with the double buffer layer showed the best thermal cycle performance among all samples in all tests. For applications with relatively slow cooling rates, the thermal durability in single-layer TBCs is more effectively enhanced by controlling a composition ratio in the blended powder, better than introducing a single buffer layer. For applications with relatively fast cooling rates, the thermal durability can be effectively improved by introducing a buffer layer than controlling a composition in the top coat, since the buffer layer provides fast localized stress relief due to its high strain compliance. These research findings allow us to control the TBC structure, and the buffer layer is efficient in improving thermal durability in cyclic thermal environments.
机译:通过各种热暴露测试,例如炉循环热疲劳,热冲击和喷气发动机热冲击,研究了微结构设计对锆酸镧(La2Zr2O7; LZO)基热障涂层(TBC)的使用寿命性能的影响。为了提高基于LZO的TBC的热耐久性,通过以不同的体积比(50:50和25:75)混合来制备使用两种LZO和8重量%氧化钇掺杂的稳定氧化锆(8YSZ)的原料粉末的复合面漆。分别)。另外,将缓冲层引入使用空气等离子喷涂法沉积的分层的基于LZO的TBC中。在所有测试中,具有双缓冲层的TBC在所有样品中显示出最佳的热循环性能。对于冷却速度相对较慢的应用,通过控制混合粉末中的组成比,比引入单个缓冲层更好地提高了单层TBC中的热耐久性。对于具有相对较快的冷却速率的应用,通过引入缓冲层而不是控制面涂层中的组成可以有效地改善热耐久性,因为缓冲层由于其高应变顺应性而提供了快速的局部应力释放。这些研究结果使我们能够控制TBC的结构,并且缓冲层可有效提高循环热环境中的热耐久性。

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