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Evaluation of the in-depth temperature sensing performance of Eu- and Dy-doped YSZ in air plasma sprayed thermal barrier coatings

机译:评价Eu和Dy掺杂YsZ在空气等离子喷涂热障涂层中的深度温度传感性能

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摘要

In-depth temperature sensing in air plasma sprayed (APS) thermal barrier coatings (TBCs) has been achieved with europium (Eu) and dysprosium (Dy) doped yttria stabilized zirconia (YSZ) sensor coatings. The luminescence properties of YSZ:Eu and YSZ:Dy, including spectrum, intensity and lifetime, were evaluated and their temperature sensing performances were compared using a lifetime-based measurement system. Both sensor TBCs display excellent temperature sensitivity in high temperature environment (400-800 °C for YSZ:Eu, 500-900 °C for YSZ:Dy) with a topcoat thickness up to 300 m. It was found that the upper limit of temperature sensing was determined by the ratio between luminescence intensity and background thermal radiation (signal-background-ratio). YSZ:Dy showed higher luminescent intensity than YSZ:Eu at elevated temperatures, and therefore displayed better temperature sensing performance with an increased limit. The effect of topcoat thickness on the temperature sensing performance was also evaluated, showing that the attenuation factor of YSZ increased significantly with topcoat thickness.Interestingly, it was found that the topcoat attenuation factor gradually decreased as temperature increased, which improved the temperature sensing performance of sensor TBCs at elevated temperature. The findings in the temperature sensing of APS TBCs provide basis for the future development of on-line APS TBCs temperaturemonitoring technology.
机译:使用with(Eu)和(Dy)掺杂的氧化钇稳定的氧化锆(YSZ)传感器涂层已经实现了对空气等离子喷涂(APS)热障涂层(TBC)的深入温度感测。评估了YSZ:Eu和YSZ:Dy的发光特性,包括光谱,强度和寿命,并使用基于寿命的测量系统比较了它们的温度传感性能。两种传感器的TBC在高温环境下(YSZ:Eu为400-800°C,YSZ:Dy为500-900°C)都具有出色的温度敏感性,其面漆厚度可达300 m。发现温度感测的上限由发光强度与背景热辐射的比率(信号-背景-比率)确定。 YSZ:Dy在升高的温度下显示出比YSZ:Eu更高的发光强度,因此显示出更好的温度感测性能,且极限值增加。还评估了面漆厚度对温度感测性能的影响,表明YSZ的衰减系数随面漆厚度的增加而显着增加,有趣的是,发现面漆的衰减系数随着温度的升高而逐渐降低,从而改善了YSZ的感温性能。高温下的传感器TBC。 APS TBC温度感测的发现为在线APS TBC温度监控技术的未来发展提供了基础。

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