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LOW-EMISSION, LIQUID FUEL COMBUSTION SYSTEM FOR CONVENTIONAL AND ALTERNATIVE FUELS DEVELOPED BY THE SCALING ANALYSIS

机译:通过尺度分析开发的用于常规和替代燃料的低排放液体燃料燃烧系统

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The objective of this study is to develop a theoretical basis for scalability considerations and design of a large scale combustor utilizing flow blurring (FB) atomization. FB atomization is a recently discovered twin-fluid atomization concept, reported to produce fine spray of liquids with wide range of viscosities. Previously, we have developed and investigated a small scale swirl-stabilized combustor of 7-kWth capacity. Spray measurements have shown that the FB injector's atomization capability is superior when compared to other techniques, such as air blast atomization. However, despite these favorable results, scalability of the FB injector and associated combustor design has never been explored for large capacity, for example, for gas turbine applications. In this study, a number of dimensionless scaling parameters that affect the processes of atomization, fuel-air mixing, and combustion are analyzed, and scaling criteria for the different components of the combustion system are selected. Constant velocity criterion is used to scale key geometric components of the system. Scaling of the nonlinear dimensions and complex geometries, such as swirler vanes and internal parts of the injector is undertaken through phenomenological analysis of the flow processes associated with the scaled component. A scaled up 60-kW_(th), capacity combustor with FB injector is developed and investigated for combustion performance using diesel and vegetable oil (soybean oil) as fuels. Results show that the scaled-up injector's performance is comparable to the smaller scale system in terms of flame quality, emission levels, and static flame stability. Visual flame images at different air to liquid ratio by mass (ALR) show mainly blue flames, especially for ALR > 2.8. Emission measurements show a general trend of lower CO and NOx levels at higher ALRs, replicating the performance of the small scale combustion system. Flame liftoff height at different ALRs is similar for both scales. The scaled-up combustor with FB injector preformed robustly with uncompromised stability for the range of firing rates above 50% of the design capacity. Experimental results corroborate with the scaling methodology developed in this research.
机译:这项研究的目的是为可扩展性考虑和利用流量模糊(FB)雾化设计大型燃烧室提供理论依据。 FB雾化是最近发现的双流体雾化概念,据报道可产生粘度范围广的精细液体喷雾。以前,我们已经开发并研究了容量为7 kWth的小型旋流稳定燃烧器。喷雾测量表明,与其他技术(例如鼓风雾化)相比,FB喷射器的雾化能力更强。然而,尽管取得了这些令人鼓舞的结果,但对于大容量(例如,燃气轮机应用),FB喷射器和相关燃烧器设计的可扩展性从未得到探索。在这项研究中,分析了许多影响雾化,燃料-空气混合和燃烧过程的无量纲缩放参数,并选择了燃烧系统不同组件的缩放标准。等速标准用于缩放系统的关键几何组成部分。非线性尺寸和复杂几何体(例如旋流器叶片和喷油器内部零件)的缩放是通过对与缩放组件相关的流动过程的现象学分析来进行的。研制出具有FB喷油器的按比例放大的60 kW_th容量燃烧室,并使用柴油和植物油(大豆油)作为燃料进行了燃烧性能研究。结果表明,在火焰质量,排放水平和静态火焰稳定性方面,按比例放大的喷油器性能可与小型系统媲美。在不同的气液质量比(ALR)下的可见火焰图像主要显示蓝色火焰,尤其是对于ALR> 2.8时。排放测量结果表明,在较高的ALR下,CO和NOx含量总体呈下降趋势,从而复制了小型燃烧系统的性能。两种刻度在不同ALR处的火焰升空高度相似。带有FB喷油嘴的按比例放大的燃烧器具有强大的性能,并具有不折不扣的稳定性,可在高于设计能力50%的射速范围内进行燃烧。实验结果与本研究中开发的缩放方法相符。

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