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Numerical simulation of spray combustion using bio-mass derived liquid fuels

机译:利用生物质衍生液体燃料进行喷雾燃烧的数值模拟

摘要

The main objective of this work is to create a robust model for two-phase liquid spray combustion flow using vegetable oils, to investigate the flow structure generated by a swirler array with different fuels, and secondly to assess and optimise the capability of the CFD to predict accurately the results obtained experimentally and eventually enhance CFD model development and simulation. Validation is achieved by comparing the numerical results obtained with CFD with the experimental measurements. The purpose of this research is to increase the scientific understanding of the fundamental mechanisms of the spray combustion process using a carbon neutral fuel such as ethanol and biodiesel. In fact, very few numerical simulations of liquid biomass fuels in gas turbine systems are available in the literature. The flames are simulated using the commercial code FLUENT. The combustion/turbulence interaction is modelled using the laminar flamelet approach with detailed chemistry modelled using the OPPDIFF model from CHEMKIN. While the experiments could be carried out only up to 3 atm, the simulations were further extended to a maximum pressure of 10 atm. The FLUENT results were assessed qualitatively and quantitatively between the experimental measurements and the simulation. The cold flow features have been captured by the present simulations with a good degree of accuracy. Effect of air preheating was investigated for the biodiesel, and sensitivity to droplet size and spray angles variation were analysed. Good agreement was obtained for ethanol except in the fuel lean region due to failure of the FLUENT laminar flamelet model to capture local flame extinction while biodiesel simulation resulted in a significant overprediction of the flame temperature especially in the downstream region and satisfactory results further upstream. The results show the importance of setting proper droplet initial conditions, since it will significantly affect the structure of the flame.
机译:这项工作的主要目的是为使用植物油的两相液体喷雾燃烧流创建一个健壮的模型,研究使用不同燃料的旋流器阵列产生的流结构,其次评估和优化CFD的能力准确预测通过实验获得的结果,并最终增强CFD模型的开发和仿真。通过将CFD获得的数值结果与实验测量值进行比较来进行验证。这项研究的目的是增加对使用碳中性燃料(例如乙醇和生物柴油)的喷雾燃烧过程的基本机理的科学认识。实际上,文献中几乎没有关于燃气轮机系统中液态生物质燃料的数值模拟。使用商业代码FLUENT模拟火焰。燃烧/湍流相互作用是使用层流小火焰方法建模的,详细化学过程是使用CHEMKIN的OPPDIFF模型建模的。虽然实验最多只能进行3个大气压,但模拟进一步扩展到了10个大气压的最大压力。在实验测量和模拟之间,定性和定量地评估了FLUENT结果。目前的模拟已经很好地捕获了冷流特征。研究了空气预热对生物柴油的影响,并分析了对液滴尺寸和喷雾角度变化的敏感性。由于在FULENT层流小火焰模型无法捕获局部火焰熄灭的情况下,除燃料稀薄区域外,乙醇获得了良好的一致性,而生物柴油模拟导致火焰温度显着过高预测,尤其是在下游区域,并且在上游进一步取得了令人满意的结果。结果表明设置适当的液滴初始条件的重要性,因为它将显着影响火焰的结构。

著录项

  • 作者

    Moss J B; Rochaya David;

  • 作者单位
  • 年度 2007
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  • 原文格式 PDF
  • 正文语种 English
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