首页> 外文会议>ASME Turbine Technical Conference and Exposition >DEVELOPMENT OF POROUS INJECTION TECHNOLOGY TO REDUCE EMISSIONS FOR DRY LOW NO_x COMBUSTORS: MICROMIXER SWIRL INJECTORS
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DEVELOPMENT OF POROUS INJECTION TECHNOLOGY TO REDUCE EMISSIONS FOR DRY LOW NO_x COMBUSTORS: MICROMIXER SWIRL INJECTORS

机译:多孔注塑技术的开发,减少干燥低NO_X燃烧器排放:微混合器和旋流注射器

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The Combustion and Fire Research Laboratory (CFRL) at the University of Cincinnati (UC) is working on the development of advanced next generation injectors for DLN combustors. Several inputs were received from the project partners during the development phase. In the present paper, developmental work on two novel injectors with Porous Injection Technology (PIT) is presented. The technology has the potential to reduce NO_x emissions to single digit PPM level with a stable combustion across wide range of load conditions. One of the key factors that are essential for lowering NO_x levels is the efficient mixing of fuel-air in both spatial and temporal domains. The porous injection technology has the potential to reduce the spatial and temporal gradients to a minimum. In the present paper, two measurement techniques were used to evaluate the fuel-air mixing under atmospheric conditions. The CO_2 mixing technique was used to quantify the spatial variations in the fuel mass fraction. Planar Laser Induced Fluorescence (PLIF) was used to obtain both spatial and temporal fuel mass fractions. The CO_2 mixing measurements were used to validate the PLIF data for quantification. The RMS fluctuations in spatial and temporal domains were quantified from PLIF data. The combustion experiments were carried out at atmospheric pressure with a preheated temperature of air of 500-650 K and equivalence ratio of 0.5-0.8. The pressure drop across the injector was 4%. Natural gas with 90% methane and 9% ethane was used as fuel. The results show a stable flame for both injectors without combustion instabilities. Both injectors show low NO_x levels. For conventional swirl stabilized design with PIT, the NO_x levels were of the order of 1.5 ppm at the firing temperature of 1866 K whereas for the novel micromixer design, the NO_x levels were of the order of 4 ppm@ ~1866 K.
机译:辛辛那提大学(UC)的燃烧和消防研究实验室(CFRL)正在致力于为DLN燃烧器开发高级下一代注射器。在开发阶段,项目合作伙伴收到了若干投入。在本文中,提出了两种具有多孔注射技术(PIT)的新型喷射器的发育工作。该技术有可能将NO_X排放量减少到单位数字PPM水平,在宽范围的负载条件下具有稳定的燃烧。对降低NO_X水平至关重要的关键因素之一是空间和时间域中的燃料空气的有效混合。多孔注入技术有可能将空间和时间梯度降低到最小值。在本文中,使用两种测量技术来评估大气条件下的燃料 - 空气混合。 CO_2混合技术用于量化燃料质量分数的空间变化。平面激光诱导的荧光(PLIF)用于获得空间和时间燃料质量级分。使用CO_2混合测量来验证用于量化的PLIF数据。空间和时间域中的RMS波动从PLIF数据量化。燃烧实验在大气压下进行,预热温度为500-650 k和等效比为0.5-0.8。喷射器穿过的压降为4%。用90%甲烷和9%乙烷的天然气用作燃料。结果显示出没有燃烧不稳定的喷射器的稳定火焰。两个喷射器都显示出低的NO_X级别。对于具有坑的传统旋流稳定设计,NO_X水平在1866克的烧制温度下为1.5ppm,而对于新的微混装器设计,NO_X水平为4 ppm @〜1866k。

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