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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Chemical Kinetic Mechanism Study on Premixed Combustion of Ammonia/Hydrogen Fuels for Gas Turbine Use
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Chemical Kinetic Mechanism Study on Premixed Combustion of Ammonia/Hydrogen Fuels for Gas Turbine Use

机译:燃气轮机氨/氢燃料预混燃烧的化学动力学机制研究

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摘要

To explore the potential of ammonia-based fuel as an alternative fuel for future power generation, studies involving robust mathematical, chemical, thermofluidic analyses are required to progress toward industrial implementation. Thus, the aim of this study is to identify reaction mechanisms that accurately represent ammonia kinetics over a large range of conditions, particularly at industrial conditions. To comprehensively evaluate the performance of the chemical mechanisms, 12 mechanisms are tested in terms of flame speed, NO_x emissions and ignition delay against the experimental data. Freely propagating flame calculations indicate that Mathieu mechanism yields the best agreement within experimental data range of different ammonia concentrations, equivalence ratios, and pressures. Ignition delay times calculations show that Mathieu mechanism and Tian mechanism yield the best agreement with data from shock tube experiments at pressures up to 30atm. Sensitivity analyses were performed in order to identify reactions and ranges of conditions that require optimization in future mechanism development. The present study suggests that the Mathieu mechanism and Tian mechanism are the best suited for the further study on ammonia/hydrogen combustion chemistry under practical industrial conditions. The results obtained in this study also allow gas turbine designers and modelers to choose the most suitable mechanism for combustion studies.
机译:为了探讨基于氨的燃料作为未来发电的替代燃料的潜力,需要涉及稳健的数学,化学,热流体分析所需的研究进展工业实施。因此,本研究的目的是鉴定反应机制,即在大量条件下准确地代表氨动力学,特别是在工业条件下。为了全面评估化学机制的性能,在对试验数据的火焰速度,NO_X排放和点火延迟方面测试了12种机制。自由传播的火焰计算表明Mathieu机制在不同氨浓度,等效比和压力的实验数据范围内产生最佳的一致性。点火延迟时间计算表明,Mathieu机制和天机机制与震动管实验的数据达到30atm的压力,产生了最佳协议。进行敏感性分析,以鉴定需要在未来机制开发中优化的反应和条件的范围。本研究表明,Mathieu机制和天田机制最适合在实际工业条件下进一步研究氨/氢燃烧化学。本研究中获得的结果还允许燃气轮机设计师和建模者选择最合适的燃烧研究机制。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2017年第8期|081504.1-081504.10|共10页
  • 作者单位

    Cardiff School of Engineering Cardiff University Room W/2.06 Queen's Buildings The Parade Cardiff CF24 3AA UK;

    Cardiff School of Engineering Cardiff University Room S/1.03a Queen's Buildings The Parade Cardiff CF24 3AA UK;

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