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Numerical analysis of the effect of the hydrogen composition on a partially premixed gas turbine combustor

机译:氢成分对部分预混燃气轮机燃烧室影响的数值分析

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Large-eddy simulations (LESs) of a hydrogen-enriched 1/3-scale GE7EA gas turbine combustor are conducted. Four different fuel compositions are employed to investigate the role of the CH4/H-2 syngas composition on the resulting flame structure and pressure oscillations occurring inside the combustor. A comparison with the experimental data is conducted to validate the numerical results. First, imaging processing is performed using an Abel-inversion technique for the accumulated OH mass fraction showing good agreement with the experimental images. Then, the calculated velocity fields are successfully compared to the experimental (particle image velocimetry) results. The results show that the flame structure is readily altered when changing the syngas composition; this strongly affects the flow field and therefore the pressure oscillations inside the combustor. When the hydrogen composition is increased, the flame becomes shorter and thicker, and its effect on the outer recirculation zone is minimized. When the flame length approaches the radial length of the combustor under certain conditions, the flame periodically attaches to the rigid wall and the pressure oscillations inside the combustor become amplified. Overall, the LES combined with the multi-step kinetics successfully predicts the variation in the flow fields due to fuel composition changes and reveals the role of the syngas composition in the combustor. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:进行了富氢的1/3比例GE7EA燃气轮机燃烧室的大涡模拟(LESs)。使用四种不同的燃料成分来研究CH4 / H-2合成气成分对所得火焰结构和燃烧室内部压力波动的作用。与实验数据进行比较以验证数值结果。首先,使用阿贝尔反演技术对累积的OH质量分数进行成像处理,显示出与实验图像吻合良好。然后,将计算出的速度场与实验(粒子图像测速)结果成功进行比较。结果表明,在改变合成气组成时,火焰结构易于改变。这会严重影响流场,进而影响燃烧室内部的压力振荡。当氢成分增加时,火焰变得更短且更浓,并且其对外部再循环区域的影响最小化。在某些条件下,当火焰长度接近燃烧室的径向长度时,火焰会定期附着在刚性壁上,并且燃烧室内部的压力振荡会放大。总体而言,LES与多步动力学相结合成功地预测了由于燃料成分变化而引起的流场变化,并揭示了合成气成分在燃烧室中的作用。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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