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Thermal durability and fracture behavior of layered Yb-Gd-Y-based thermal barrier coatings in thermal cyclic exposure

机译:Yb-Gd-Y层状热障涂层在热循环暴露中的热耐久性和断裂行为

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摘要

The effects of structural design on the thermal durability and fracture behavior of Yb-Gd-Y-based thermal barrier coatings (TBCs) were investigated through thermal cyclic exposure tests, such as furnace cyclic thermal fatigue (FCTF) and jet engine thermal shock (JETS) tests. The effects of composition in the bond coat and feedstock purity for the buffer layer on its lifetime performance were also examined. To overcome the drawbacks of Yb-Gd-Y-based material with inferior thermal durability due to poor mechanical properties and low coefficient of thermal expansion, a buffer layer was introduced in the Yb-Gd-Y-based TBC systems. In FCTF tests, the TBCs with the buffer layer showed a longer lifetime performance than those without the buffer layer, showing the longest thermal durability in the TBC with the Co-Ni-based bond coat and the buffer layer of regular purity. In JETS tests, the TBC with the Ni-based bond coat and the buffer layer of high purity showed a sound condition after 2000 cycles, showing better thermal durability for TBC with the Co-Ni-based bond coat rather than that with the Ni-based bond coat in the single layer coating without the buffer layer. The buffer layer effectively enhanced the thermal durability in slow temperature change (in the FCTF test), while the bond-coat composition and the feedstock purity for the buffer layer were found to be important factor to improve the thermal durability of the TBC in fast temperature change (in the JEET test). Finally, these research findings allow us to control the structure, composition, and feedstock purity in TBC system for improving the thermal durability in cyclic thermal environments.
机译:通过热循环暴露试验,如炉循环热疲劳(FCTF)和喷气发动机热冲击(JETS),研究了结构设计对Yb-Gd-Y基热障涂层(TBC)的热耐久性和断裂行为的影响。 )测试。还检查了粘结层中的组成和缓冲层原料纯度对其使用寿命的影响。为了克服由于差的机械性能和低的热膨胀系数而导致具有差的热耐久性的基于Yb-Gd-Y的材料的缺点,在基于Yb-Gd-Y的TBC系统中引入了缓冲层。在FCTF测试中,具有缓冲层的TBC的寿命性能比没有缓冲层的TBC更长,在具有Co-Ni基粘结层和规则纯度的缓冲层的TBC中显示出最长的热耐久性。在JETS测试中,带有Ni基粘结层和高纯度缓冲层的TBC在2000次循环后表现出良好的状态,与带有Co-Ni基粘结层的TBC相比,与具有Ni-粘结层的TBC表现出更好的耐热性不含缓冲层的单层涂层中的基体粘结涂层。缓冲层有效地提高了慢温度变化下的热耐久性(在FCTF测试中),而粘合剂涂层的组成和缓冲层的原料纯度被认为是提高TBC在高温下的热耐久性的重要因素。更改(在JEET测试中)。最后,这些研究结果使我们能够控制TBC系统中的结构,组成和原料纯度,以改善循环热环境中的热耐久性。

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