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Development of an improved hybrid multi-component vaporization model for realistic multi-component fuels

机译:为实际的多组分燃料开发改进的混合多组分汽化模型

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摘要

An improved hybrid multi-component (HMC) vaporization model was developed and applied to predict the vaporization characteristics of a realistic multi-component fuel droplet under various operating conditions in this study. Firstly, the realistic multi-component fuel is modeled as a mixture with a finite number of discrete hydrocarbon classes, and each hydrocarbon class is presented by a probability density function (PDF). Then, an HMC model was constructed based on the recent progress including an improved multi-diffusion sub-model, a corrected formulation for the calculation of Stefan flow velocity, and the temporal variation of thermal physical properties of fuels with temperature and compositions. The predictions of the improved HMC model were validated with the experimental data from literatures for the vaporization of realistic multi-component fuels and satisfactory agreements between the predictions and measurements are achieved. Finally, extensive comparisons of the hybrid multi-component (HMC), continuous multi-component (CMC), and discrete multi-component (DMC) models in the aspects of computational accuracy and efficiency were performed. It is found that the CMC model shows the highest computational efficiency and the lowest accuracy. The DMC model with a large amount of fuel components has the highest accuracy but the lowest efficiency. The HMC model not only could improve the computational efficiency compared with the full DMC model considering all fuel components, but also illustrates significantly better accuracy than the CMC model under the conditions tested in this study.
机译:在本研究中,开发了一种改进的混合多组分(HMC)汽化模型,并将其用于预测实际多组分燃料小滴在各种工况下的汽化特性。首先,将实际的多组分燃料建模为具有有限数量的离散烃类的混合物,并通过概率密度函数(PDF)表示每种烃类。然后,基于最新进展构建了HMC模型,包括改进的多扩散子模型,用于计算Stefan流速的校正公式以及燃料的热物理性质随温度和成分的时间变化。改进的HMC模型的预测结果已得到来自文献中用于实际多组分燃料汽化的实验数据的验证,并且在预测结果和测量结果之间达成了令人满意的协议。最后,在计算准确性和效率方面,对混合多成分(HMC)模型,连续多成分(CMC)模型和离散多成分(DMC)模型进行了广泛的比较。发现CMC模型显示出最高的计算效率和最低的准确性。具有大量燃料成分的DMC模型具有最高的精度,但效率最低。与考虑所有燃料成分的完整DMC模型相比,HMC模型不仅可以提高计算效率,而且在本研究中测试的条件下,其精度也比CMC模型好得多。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2014年第10期|173-184|共12页
  • 作者单位

    Institute of Internal Combustion Engines, School of Energy and Power Engineering, Dalian University of Technology, PR China;

    Institute of Internal Combustion Engines, School of Energy and Power Engineering, Dalian University of Technology, PR China;

    Institute of Internal Combustion Engines, School of Energy and Power Engineering, Dalian University of Technology, PR China,School of Energy and Power Engineering, Dalian University of technology, Dalian 116024, PR China;

    Institute of Internal Combustion Engines, School of Energy and Power Engineering, Dalian University of Technology, PR China;

    Institute of Internal Combustion Engines, School of Energy and Power Engineering, Dalian University of Technology, PR China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Vaporization; Multi-component droplet; Multi-diffusion; Computational efficiency;

    机译:汽化;多组分液滴多重扩散计算效率;

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