首页> 外文会议>2003 ASME(American Society of Mechanical Engineers) Turbo Expo; Jun 16-19, 2003; Atlanta, Georgia >EMISSION PERFORMANCE OF A MICRO GAS TURBINE LPP-COMBUSTOR WITH FUEL FILM EVAPORATION
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EMISSION PERFORMANCE OF A MICRO GAS TURBINE LPP-COMBUSTOR WITH FUEL FILM EVAPORATION

机译:燃油蒸发的微型燃气轮机LPP燃烧器的排放性能

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The present paper describes the emission performance of a newly designed liquid fuelled micro gas turbine combustor. In order to reduce pollutant emissions, in particular nitrogen oxides NO_x, lean premixed pre-vaporized combustion is utilized. Both, combustor inlet pressure and temperature are very low due to the thermodynamic cycle conditions chosen. As a consequence, the heat available for fuel spray evaporation is not sufficient. The present combustor concept therefore uses fuel film evaporation on the hot inner surface of a premix tube. The heat for evaporating the liquid fuel film is provided by the outer counter flow of hot exhaust gases. To establish almost adiabatic conditions within the reaction zone the flame tube features a multi-layered design, consisting of ceramic rings forming the inner wall, an insulation compliant layer, and the outer metal casing. To demonstrate the potential for reducing pollutant emissions overall NO_x and CO concentrations of the exhaust gases have been measured and analyzed. The impact of combustor loading parameter, equivalence ratio, staging of the combustion, and ratio between calculated reaction times and mean residence times on the formation of pollutant emissions is investigated in detail. Furthermore, the impact of the flame tube volume on pollutant emissions and combustion stability is considered at various operating conditions. Measured pollutant emissions indicate the great potential for pollutant reduction that is associated with the specific geometry of the combustor.
机译:本文介绍了一种新设计的液体燃料微型燃气轮机燃烧室的排放性能。为了减少污染物排放,特别是氮氧化物NO_x,利用了稀薄的预混合的预汽化燃烧。由于所选择的热力学循环条件,燃烧室的入口压力和温度都非常低。结果,可用于燃料喷雾蒸发的热量不足。因此,本燃烧器概念在预混管的热内表面上使用燃料膜蒸发。用于蒸发液体燃料膜的热量由热废气的外部逆流提供。为了在反应区内建立几乎绝热的条件,火焰管采用多层设计,由形成内壁,绝缘顺应层和金属外壳的陶瓷环组成。为了证明减少污染物排放的潜力,已对废气中的总NO_x和CO浓度进行了测量和分析。详细研究了燃烧室负荷参数,当量比,燃烧阶段,计算出的反应时间与平均停留时间之比对污染物排放形成的影响。此外,在各种运行条件下都考虑了火焰管体积对污染物排放和燃烧稳定性的影响。测得的污染物排放表明,与燃烧器的特定几何形状相关的污染物减排的潜力很大。

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