烧结
材料科学
陶瓷
燃烧室
复合材料
陶瓷基复合材料
燃烧
泥浆
硅
温度循环
熔点
涂层
碳化硅
相容性(地球化学)
热障涂层
涡轮叶片
结构材料
工作温度
燃气轮机
沉积(地质)
图层(电子)
作者
K N Lee,Rebekah I. Webster,Bryan J. Harder,Michael Presby,Bernadette J. Puleo,Josh Stuckner,John Setlock,Leland Hoffman
摘要
ABSTRACT The upper use temperature of state‐of‐the‐art environmental barrier coatings (EBCs) is limited by the low melting point of the silicon bond coat (BC) (1414°C). The success of next‐generation ceramic matrix composites (CMCs), targeting a 1482°C use temperature, is contingent upon the development of a new generation of EBCs with a higher temperature BC. NASA recently developed a mullite‐based BC via a slurry process to replace the silicon BC. The NASA high temperature EBC (mullite/hafnon/Yb 2 Si 2 O 7 ) exhibited about 500 h of life at 1427°C in furnace steam cycling (FSC), which is below the 1000 h life goal at 1482°C. A study was undertaken to optimize the high temperature EBC to improve its life in FSC and evaluate its performance in rigs that simulate the gas turbine environment. Two layer mullite/hafnon and the topcoat (TC) were first optimized separately, before being combined as one EBC. The main variable for the mullite/hafnon optimization was the amounts of sintering aids. Sc 2 Si 2 O 7 and HfO 2 were the two TC candidates considered to replace the Yb 2 Si 2 O 7 TC. Key factors that influenced the TC performance were CTE match and chemical compatibility with the underlying layers. This article discusses the oxidation kinetics and phase/microstructural evolution of the optimized EBC in FSC, a natural gas burner rig (NGBR), and a combustion rig (CR).
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