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Degradation of TBC Systems in Environments Relevant to Advanced Gas Turbines For IGCC Systems

机译:IGCC系统与先进燃气轮机有关的环境中的TBC系统性能下降

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摘要

Plasma sprayed (PS) thermal barrier coatings (TBCs) are used to provide thermal insulation for the hottest components in gas turbines. Zirconia stabilized with 7wt% yttria (7YSZ) is the most common ceramic top coat used for turbine blades. The 7YSZ coating can be degraded by the buildup of fly-ash deposits which can arise from the fuel source (coal/biomass) used in the combustion process in gas turbines. Fly-ash from the integrated gasification combined cycle (IGCC) process can result from coal-based syngas and also from ambient air which passes through the system. TBCs are also exposed to harsh gas environments containing CO2, SO2, and steam. As presented in this thesis, degradation from the combined effects of fly-ash and harsh gas atmosphere can severely limit TBC lifetimes. ududA key focus of this study is to assess the mode and extent of TBC degradation at 1100°C in cases when some amount of liquid forms owing to the presence of K2SO4 as a minor ash constituent. Two types of liquid infiltrations are observed depending on the principal oxide (i.e., CaO or SiO2) in the deposit. The degradation is primarily the result of mechanical damage, which results from infiltration caused by the interaction of liquid K2SO4 with either the CaO or SiO2. The TBCs used in this work are representative of commonly used coatings used in the hottest sections of land-based gas turbines. The specimens consist of 7YSZ top coats deposited on superalloy (Rene’ N5 and PWA 1484) substrates that had been coated with NiCoCrAlY bond coats. Two different top coats are studied: conventional low-density 7YSZ, and dense vertically cracked coatings.ududThe specific mechanisms of liquid infiltration resulting from CaO and SiO2 are studied by conducting isothermal exposures followed by detailed characterizations. The resulting consequences on cyclic lifetimes are also determined. Further, the cyclic lifetimes are studied in several gas atmospheres to examine the combined effect of deposit and gas atmosphere on TBC lifetime. ududThis work identifies a TBC degradation mechanism which had previously not been considered. It will be clearly shown that deposit-induced attack of TBCs can be highly detrimental at an intermediate temperature like 1100°C.
机译:等离子喷涂(PS)隔热涂层(TBC)用于为燃气轮机中最热的组件提供隔热。用7wt%的氧化钇(7YSZ)稳定的氧化锆是用于涡轮机叶片的最常见的陶瓷面漆。 7YSZ涂层会因飞灰沉积物的堆积而降解,这些沉积物可能来自燃气轮机燃烧过程中使用的燃料源(煤/生物质)。集成气化联合循环(IGCC)工艺产生的粉煤灰可能来自煤基合成气,也可能来自通过系统的环境空气。 TBC还暴露于含有CO2,SO2和蒸汽的恶劣气体环境中。如本论文所述,飞灰和恶劣气体环境共同作用所导致的降解会严重限制TBC的寿命。 ud ud这项研究的重点是评估由于K2SO4作为次要灰分成分而存在一定数量的液体形式时,TBC在1100°C降解的方式和程度。根据沉积物中的主要氧化物(即CaO或SiO2),观察到两种类型的液体渗透。降解主要是机械损伤的结果,这是由于液态K2SO4与CaO或SiO2相互作用而引起的渗透所致。这项工作中使用的TBC代表了陆基燃气轮机最热部分中常用的涂料。样品由沉积在NiCoCrAlY粘结层的超级合金(Rene'N5和PWA 1484)基底上的7YSZ面层组成。研究了两种不同的面漆:常规的低密度7YSZ和致密的垂直开裂涂层。 ud ud通过进行等温曝光并详细表征,研究了CaO和SiO2引起的液体渗透的具体机理。还确定了对循环寿命的影响。此外,在几种气体气氛中研究循环寿命,以检验沉积物和气体气氛对TBC寿命的综合影响。 ud ud这项工作确定了以前没有考虑过的TBC降级机制。将清楚地表明,在诸如1100°C的中间温度下,沉积物引起的TBC侵蚀可能是非常有害的。

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    Bohna Nathaniel;

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  • 年度 2017
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