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Numerical simulation of combustion and unburnt products in dual-fuel compression-ignition engines with multiple injection.

机译:多次喷射双燃料压燃发动机燃烧和未燃烧产物的数值模拟。

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摘要

Natural gas substitution for diesel can result in significant reduction in pollutant emissions. Based on current fuel price projections, operating costs would be lower. With a high ignition temperature and relatively low reactivity, natural gas can enable promising approaches to combustion engine design. In particular, the combination of low reactivity natural gas and high reactivity diesel may allow for optimal operation as a reactivity-controlled compression ignition (RCCI) engine, which has potential for high eciency and low emissions. In this computational study, a lean mixture of natural gas is ignited by direct injection of diesel fuel in a model of the heavy-duty CAT3401 diesel engine.;Dual-fuel combustion of natural gas-diesel (NGD) may provide a wider range of reactivity control than other dual-fuel combustion strategies such as gasoline-diesel dual fuel. Accurate and ecient combustion modeling can aid NGD dual-fuel engine control and optimization. In this study, multi-dimensional simulation was performed using a nite-volume computational code for fuel spray, combustion and emission processes. Adaptive mesh renement (AMR) and multi-zone reaction modeling enables simulation in a reasonable time. The latter approach avoids expensive kinetic calculations in every computational cell, with considerable speedup. Two approaches to combustion modeling are used within the Reynolds averaged Navier-Stokes (RANS) framework. The rst approach uses direct integration of the detailed chemistry and no turbulence-chemistry interaction modeling. The model produces encouraging agreement between the simulation and experimental data.;For reasonable accuracy and computation cost, a minimum cell size of 0.2 millimeters is suggested for NGD dual-fuel engine combustion. In addition, the role of dierent chemical reaction mechanism on the NGD dual-fuel combustion is considered with this model.;This work considers fundamental questions regarding combustion in NGD dualfuel combustion, particularly about how and where fuels react, and the dierence between combustion in the dual fuel mode and conventional diesel mode.;The results show that in part-load working condition main part of CH4 cannot burn and it has significant effect in high level of HC emission in NGD dual-fuel engine. The CFD results revel that homogeneous mixture of CH4 and air is too lean and it cannot ignite in regions that any species from C7 H16 chemical mechanism does not exist.;It is shown that multi-injection of diesel fuel with an early main injection can reduce HC emission significantly in the NGD dual-fuel engine. In addition, the results revel that increasing the air fuel ratio by decreasing the air amount could be a promising idea for HC emission reduction in NGD dual-fuel engine, too.
机译:用天然气代替柴油可以大大减少污染物排放。根据当前的燃油价格预测,运营成本将会更低。由于点火温度高且反应性相对较低,天然气可以为内燃机设计提供有前途的方法。特别地,低反应性天然气和高反应性柴油的组合可以允许作为具有高效率和低排放潜力的反应性控制的压缩点火(RCCI)发动机的最佳操作。在此计算研究中,通过在重型CAT3401柴油机模型中直接喷射柴油来点燃稀薄的天然气混合物;天然气-柴油(NGD)的双燃料燃烧可提供更大范围的反应性控制比其他双燃料燃烧策略(例如汽油-柴油双燃料)高。准确而有效的燃烧建模可以帮助NGD双燃料发动机进行控制和优化。在这项研究中,使用nite-volume计算代码对燃料的喷雾,燃烧和排放过程进行了多维模拟。自适应网格渲染(AMR)和多区域反应建模可在合理的时间内进行仿真。后一种方法避免了在每个计算单元中进行昂贵的动力学计算,并且具有相当大的速度。在雷诺平均Navier-Stokes(RANS)框架内使用了两种燃烧建模方法。第一种方法使用详细化学的直接集成,而不使用湍流-化学相互作用模型。该模型在模拟和实验数据之间产生了令人鼓舞的一致性。为了合理的准确性和计算成本,建议NGD双燃料发动机燃烧的最小像元尺寸为0.2毫米。此外,该模型还考虑了不同的化学反应机理在NGD双燃料燃烧中的作用;这项工作考虑了有关NGD双燃料燃烧中燃烧的基本问题,尤其是关于燃料如何反应和在哪里反应以及燃料之间燃烧的差异。结果表明,在部分负荷工况下,CH4的主要部分不会燃烧,并且对NGD双燃料发动机的高HC排放具有显着影响。 CFD结果表明,CH4和空气的均匀混合气太稀薄,在不存在来自C7 H16化学机理的任何物种的区域中无法点燃。;表明,在早期主喷射下多次喷射柴油可以减少NGD双燃料发动机中的HC排放量很大。另外,该结果表明,通过减少空气量来增加空燃比对于减少NGD双燃料发动机的HC排放也可能是一个有前途的想法。

著录项

  • 作者

    Jamali, Arash.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Mechanical engineering.
  • 学位 M.S.M.E.
  • 年度 2015
  • 页码 75 p.
  • 总页数 75
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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