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首页> 外文期刊>Journal of turbomachinery >Effects of Surface Deposition, Hole Blockage, and Thermal Barrier Coating Spallation on Vane Endwall Film Cooling
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Effects of Surface Deposition, Hole Blockage, and Thermal Barrier Coating Spallation on Vane Endwall Film Cooling

机译:表面沉积,孔堵塞和热障涂层剥落对叶片端壁膜冷却的影响

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摘要

With the increase in usage of gas turbines for power generation and given that natural gas resources continue to be depleted, it has become increasingly important to search for alternate fuels. One source of alternate fuels is coal derived synthetic fuels. Coal derived fuels, however, contain traces of ash and other contaminants that can deposit on vane and turbine surfaces affecting their heat transfer through reduced film cooling. The endwall of a first stage vane is one such region that can be susceptible to depositions from these contaminants. This study uses a large-scale turbine vane cascade in which the following effects on film cooling adiabatic effectiveness were investigated in the endwall region: the effect of near-hole deposition, the effect of partial film cooling hole blockage, and the effect of spaliation of a thermal barrier coating. The results indicated that deposits near the hole exit can sometimes improve the cooling effectiveness at the leading edge, but with increased deposition heights the cooling deteriorates. Partial hole blockage studies revealed that the cooling effectiveness deteriorates with increases in the number of blocked holes. Spaliation studies showed that for a spalled endwall surface downstream of the leading edge cooling row, cooling effectiveness worsened with an increase in blowing ratio.
机译:随着燃气轮机用于发电的使用的增加以及天然气资源的不断消耗,寻找替代燃料变得越来越重要。替代燃料的一种来源是煤衍生的合成燃料。但是,煤制燃料含有微量的灰分和其他污染物,这些污染物可能沉积在叶片和涡轮机表面上,从而通过减少薄膜冷却而影响其传热。第一级叶片的端壁是一个这样的区域,该区域容易受到这些污染物的沉积的影响。这项研究使用了大型涡轮叶片级联,其中研究了在端壁区域对膜冷却绝热效果的以下影响:近孔沉积的影响,部分膜冷却孔堵塞的影响以及硅藻胶的片状化影响。隔热涂层。结果表明,孔出口附近的沉积物有时可以改善前缘处的冷却效果,但是随着沉积高度的增加,冷却效果会降低。部分孔堵塞研究表明,冷却效率随堵塞孔数量的增加而降低。散裂研究表明,对于前缘冷却排下游的散裂的端壁表面,冷却效率随着吹风比的增加而变差。

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