首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >VALIDATION OF SURFACE TEMPERATURE MEASUREMENTS ON A COMBUSTOR LINER UNDER FULL-LOAD CONDITIONS USING A NOVEL THERMAL HISTORY PAINT
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VALIDATION OF SURFACE TEMPERATURE MEASUREMENTS ON A COMBUSTOR LINER UNDER FULL-LOAD CONDITIONS USING A NOVEL THERMAL HISTORY PAINT

机译:使用新的热历史涂料在满载条件下验证燃烧器衬里的表面温度测量

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摘要

The ever-increasing requirements on gas turbine efficiency, which are at least partially met by increasing firing temperatures, and the simultaneous demand for reduced emissions, necessitate much more accurate calculations of the combustion process and combustor wall temperatures. Thermocouples give locally very accurate measurements of these temperatures, but there is a practical limit to the amount of measurement points. Thermal paints are another established measurement technique, but are toxic and at the same time require dedicated, short-duration tests. Thermal History Paints (THPs) provide an innovative alternative to the aforementioned techniques, but so far only a limited number of tests has been conducted under real engine conditions. THPs are similar in their chemical and physical make-up to conventional thermographic phosphors which have been successfully used in gas turbine applications for on-line temperature detection before. A typical THP comprises of oxide ceramic pigments and a water based binder. The ceramic is synthesized to be amorphous and when heated it crystallizes, permanently changing the microstructure. The ceramic is doped with lanthanide ions to make it phosphorescent. The lanthanide ions act as atomic level sensors and as the structure of the material changes, so do the phosphorescent properties of the material. By measuring the phosphorescence the maximum temperature of exposure can be determined through calibration, enabling post operation measurements at ambient conditions. This paper describes a test in which THP was applied to an impingement-cooled front panel from a combustor of an industrial gas turbine. Since this component sees a wide range of temperatures, it is ideally suited for the testing of the measurement techniques under real engine conditions. The panel was instrumented with a thermocouple and thermal paint was applied to the cold side of the impingement plate. THP was applied to the hot-gas side of this plate for validation against the other measurement techniques and to evaluate its resilience against the reacting hot gas environment. The durability and temperature results of the three different measurement techniques are discussed. The results demonstrate the benefits of THPs as a new temperature profiling technique. It is shown that the THP exhibited greater durability compared to the conventional thermal paint. Furthermore, the new technology provided detailed measurements down to millimeters indicating local temperature variations and global variations over the complete component.
机译:通过增加烧制温度至少部分地满足的燃气涡轮机效率的不断增加的要求,以及对降低排放的同时需求,需要更准确地计算燃烧过程和燃烧器壁温度。热电偶提供了对这些温度的本地非常精确的测量,但对测量点的量有实际限制。热涂料是另一种建立的测量技术,但有毒,同时需要专用,短持续时间测试。热历史涂料(THP)为上述技术提供了一种创新的替代方案,但到目前为止仅在实际发动机条件下进行了有限数量的测试。 THP在其化学物质和物理化妆品中类似于传统的热成分磷光体,该磷光体已成功用于燃气轮机应用以进行在线温度检测。典型的THP包括氧化物陶瓷颜料和水基粘合剂。合成的陶瓷是无定形的,当加热时结晶,永久地改变微观结构。陶瓷掺杂镧系元素离子以使其磷光。镧系元素IENS充当原子水平传感器,随着材料的结构变化,材料的磷光特性也是如此。通过测量磷光,可以通过校准来确定曝光的最大温度,使得在环境条件下可以在操作中进行操作。本文介绍了一种测试,其中将THP从工业燃气轮机的燃烧器应用于冲击冷却的前面板。由于该组件看到了各种温度,因此理想地适用于在实际发动机条件下测试测量技术。将面板用热电偶仪器仪器,并将热涂料施加到冲击板的冷侧。将THP应用于该板的热气体侧,以验证其他测量技术,并评估其对反应热气体环境的弹性。讨论了三种不同测量技术的耐久性和温度结果。结果证明了THP作为新的温度分析技术的益处。结果表明,与传统的热涂料相比,THP表现出更大的耐久性。此外,新技术将详细测量为毫米,表示本地温度变化和完整组件上的全局变化。

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