Kerosene-H2 blending effects on flame properties in a multi-fuel combustor

Kaushal Dave, Sarah Link, Francesca De Domenico, Ferry Schrijer, Fulvio Scarano, Arvind Gangoli Rao
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Abstract

In this study, the macroscopic properties of kerosene-H2 blended flames are investigated in a multi-phase, multi-fuel combustor, focusing on the effects of increasing H2 blending fractions. The non-reacting flow field of the swirl-stabilized combustor is characterized using PIV, and macro-structures in the flow and spray-swirl interactions are analyzed. Kerosene atomizers are tested to estimate variations in spray quality across different fuel blends. The changes in the optical properties of the flames are recorded using broadband chemiluminescence imaging while the changes in the acoustic emissions are recorded using a microphone. Results show that H2 addition significantly alters the flame topology, transitioning from a lobed flame for pure kerosene to a single contiguous swirling flame for blended or pure H2 cases. The flame luminosity decreases, with the emission color shifting from bright yellow (pure kerosene case) to dull yellow (multi-fuel cases) to a red-blue hue (pure H2 case). These changes are attributed to variations in fuel distribution, heat release patterns, combustion mode, flame speed, and soot formation tendencies. The acoustic analysis reveals that a strong tonal behavior is observed under pure fuel conditions (prominent peaks at higher harmonics of 150 Hz) while broadband characteristics are exhibited under blended fuel conditions. The overall acoustic emissions in multi-fuel cases are reduced by ∼80 % compared to pure H2 and ∼55 % compared to pure kerosene. This study highlights the effects of high levels of H2 blending on flame dynamics and acoustic behavior in a multi-phase, multi-fuel combustor, offering valuable insights for the development of fuel-agnostic combustion systems.
煤油- h2混合对多燃料燃烧室火焰特性的影响
在多相、多燃料燃烧室中,研究了煤油-H2混合火焰的宏观特性,重点研究了增加H2混合分数的影响。利用PIV对旋流稳定燃烧室的非反应流场进行了表征,分析了流动和喷雾-旋流相互作用中的宏观结构。对煤油雾化器进行了测试,以估计不同燃料混合物中喷雾质量的变化。利用宽带化学发光成像技术记录火焰光学特性的变化,同时利用传声器记录声发射的变化。结果表明,H2的加入显著地改变了火焰的拓扑结构,从纯煤油的分叶火焰转变为混合或纯H2情况下的单个连续旋转火焰。火焰亮度降低,发射颜色从亮黄色(纯煤油情况)到暗黄色(多燃料情况)再到红蓝色色调(纯H2情况)。这些变化归因于燃料分布、热释放模式、燃烧模式、火焰速度和烟灰形成趋势的变化。声学分析表明,在纯燃料条件下观察到强烈的音调行为(在150 Hz的高谐波处显著峰值),而在混合燃料条件下表现出宽带特性。与纯氢气相比,多燃料情况下的总声发射减少了~ 80%,与纯煤油相比减少了~ 55%。这项研究强调了高水平的H2混合对多相、多燃料燃烧器中火焰动力学和声学行为的影响,为开发与燃料无关的燃烧系统提供了有价值的见解。
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