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CATALYTIC COMBUSTION FOR INDUSTRIAL GAS TURBINES

机译:工业燃气轮机的催化燃烧

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This brief review provides a general account of work directed at the use of catalytic combustion in gas turbine engines. A major potential advantage of using catalytic combustion is that the fuel can be burnt efficiently at temperatures low enough ( < 1500℃) to avoid significant oxidation of atmospheric nitrogen. This advantage was less important when catalytic combustion was demonstrated in the 1970's than it is today and received relatively little attention until the following decade. After discussion of the principles involved in the design of a combustor that must meet the mixing, size, performance and durability goals of a based gas turbine application, the review turns to accounts of experiments conducted on a laboratory scale with simple configurations. These established basic operating parameters for satisfactory combustion performance and led to larger scale work and to prototype design concepts for industrial gas turbines in the late 70's and early 80's. Test results were encouraging but were not pursued definitively in the U.S.A. Activity continued at several centres in Japan, with exploration of a number of different catalyst arrangements, geometries, and control systems, again with encouraging results. At the same time, there has been renewed interests in the U.S.A. and in Europe, spurred largely by the emphasis on reducing emissions of nitrogen oxides (NOx). The paper concludes with suggestions for further development of catalytically stabilized combustion systems for gas turbines. These systems must ensure adequate pre-catalyst temperature, with evenly premixed fuel and air, and sufficient temperature rise across the catalyst to ensure effective completion of reaction in a homogeneous reaction mode. The outstanding problems are largely concerned with questions of catalyst integrity and longevity in practical configurations and realistic engine operating conditions.
机译:这篇简短的评论概述了针对在燃气轮机中使用催化燃烧的工作。使用催化燃烧的主要潜在优势在于,燃料可以在足够低的温度(<1500℃)下有效燃烧,从而避免大气氮的明显氧化。当催化燃烧在1970年代被证明比今天更重要时,这一优势就显得不那么重要了,直到随后的十年才受到较少的关注。在讨论了燃烧器设计中涉及的原理之后,必须满足基于燃气轮机应用的混合,尺寸,性能和耐用性目标,然后,本文回顾了在实验室规模下以简单配置进行的实验。这些建立了令人满意的燃烧性能的基本运行参数,并导致了70年代末80年代初的大规模工作以及工业燃气轮机的原型设计概念。测试结果令人鼓舞,但在美国并未得到明确的认可。在日本的几个中心,活动继续进行,探索了许多不同的催化剂布置,几何形状和控制系统,再次取得了令人鼓舞的结果。同时,在美国和欧洲已经有了新的兴趣,这在很大程度上是因为着重于减少氮氧化物(NOx)的排放。本文最后提出了进一步开发用于燃气轮机的催化稳定燃烧系统的建议。这些系统必须确保适当的预催化剂温度,均匀混合的燃料和空气,并在整个催化剂上充分升高温度,以确保在均相反应模式下有效完成反应。悬而未决的问题主要涉及在实际配置和实际发动机工作条件下催化剂完整性和寿命的问题。

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