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INVESTIGATION OF ADJACENT LIFTED FLAMES INTERACTION IN AN INLINE AND INCLINED MULTI-BURNER ARRANGEMENT

机译:在线和倾斜的多燃烧器布置中相邻提升火焰相互作用的研究

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The main objective of this research is to assess an innovative, low nitrogen oxides emission combustor concept, which has the potential to achieve the long term European emissions goals for aircraft engines. Lean lifted spray flames and their very low nitrogen oxides emissions are combined with an inclination of burners in annular combustor leading to a more compact combustor with superior stability range. The presented combustor concept was developed in the frame of the European research project CHAIRLIFT(Compact Helical Arranged combus-toRs with lean LIFTed flames). CHAIRLIFT combustor concept is based on "low swirl" lean lifted spray flames, which features a high degree of premixing and consequently significantly reduced nitrogen oxides emissions and flashback risk compared to conventional swirl stabilized flames. In the CHAIRLIFT combustor concept, the lifted flames are combined with Short Helical Com-bustors arrangement to attain stable combustion by tilting the axis of the flames relative to the axis of the turbine to enhance the interaction of adjacent flames in a circumferential direction. A series of experimental tests were conducted at a multi-burner array test rig consisting of up to five modular burners at different burner inclination angles (0° and 45°), equivalence ratios, and relative air pressure drop at ambient conditions. For all investi-gated configurations, a remarkable high lean blow out for non-piloted burners (_(lbo) = 0.29 - 0.37), was measured. The multi-burner configurations were observed having a superior stability range in contrast to the typical decrease in stability from single to high swirl multi-burner. The unwanted flow deflection of highly swirled flames in Short Helical Combustors arrangement, could be avoided with the investigated low swirl lifted flames. Moreover, the flame chemiluminescence (OH*) measurements were used to provide a qualitative characterization of the flame topology. Complementary numerical investigations were carried out using different numbers of burners to evaluate the effect of boundary conditions.
机译:本研究的主要目的是评估一种创新,低氮氧化物排放燃烧器概念,这有可能实现飞机发动机的长期欧洲排放目标。稀升喷雾火焰及其非常低的氮氧化物排放结合了环形燃烧器中的燃烧器的倾斜,导致具有更高的稳定性范围的更紧凑的燃烧器。所提出的燃烧器概念是在欧洲研究项目坐骑架架的框架中开发的(紧凑的螺旋螺旋排列的Combus-Tors,带有瘦火焰)。驾驶燃烧器概念基于“低涡流”瘦升降喷雾火焰,其特征在于与传统的旋流稳定的火焰相比,具有高度预混合,并且因此显着降低了氮氧化物排放和倒回风险。在驾驶燃烧器概念中,提升的火焰与短螺旋COM-BROBERS布置结合,通过使火焰的轴线倾斜相对于涡轮机的轴线来获得稳定的燃烧,以增强相邻火焰在圆周方向上的相互作用。在多燃烧器阵列试验台下进行一系列实验测试,该试验装置由不同的燃烧器倾斜角(0°和45°),等效比率和环境条件下的相对空气压降和相对空气压降组成的多燃烧器阵列试验台。对于所有Investi-Gated配置,测量了非导燃器的显着高精度(_(lbo)= 0.29-0.37)。观察到多燃烧器配置,其具有优异的稳定性范围,与单个到高旋流多燃烧器的稳定性的典型降低相比。通过调查的低旋流提升的火焰,可以避免在短螺旋燃烧器布置中的高旋转火焰的不需要的流动偏转。此外,火焰化学发光(OH *)测量用于提供火焰拓扑的定性表征。使用不同数量的燃烧器进行互补数值研究,以评估边界条件的影响。

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