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Analysis of a natural gas fuelled homogeneous charge compression ignition engine with exhaust gas recirculation using a stochastic reactor model

机译:利用随机反应堆模型分析具有废气再循环的天然气燃料均质充量压燃式发动机

摘要

Combustion and emissions formation in a Volvo TD 100 series diesel engine running in a homogeneous charge compression ignition (HCCI) mode and fuelled with natural gas is simulated and compared with measurements for both with and without external exhaust gas recirculation (EGR). A new stochastic approach is introduced to model the convective heat transfer, which accounts for fluctuations and fluid-wall interaction effects. This model is included in a partially stirred plug flow reactor (PaSPFR) approach, a stochastic reactor model (SRM), and is applied to study the effect of EGR on pressure, autoignition timing and emissions of CO and unburned hydrocarbons (HCs). The model accounts for temperature inhomogeneities and includes a detailed chemical mechanism to simulate the chemical reactions within the combustion chamber. Turbulent mixing is described by the interaction by exchange with the mean (IEM) model. A Monte Carlo method with a second-order time-splitting technique is employed to obtain the numerical solution. The model is validated by comparing the simulated in-cylinder pressure history and emissions with measurements taken from Christensen and Johansson (SAE Paper 982454). Excellent agreement is obtained between the peak pressure, ignition timing and CO and HC emissions predicted by the model and those obtained from the measurements for the non-EGR, 38 per cent EGR and 47 per cent EGR cases. A comparison between the pressure profiles for the cases studied reveals that the ignition timing and the peak pressure are dependent on the EGR. With EGR, the peak pressure reduces and the autoignition is delayed. The trend observed in the measured emissions with varying EGR is also predicted correctly by the model.
机译:在均质充量压缩点火(HCCI)模式下运行并以天然气为燃料的Volvo TD 100系列柴油发动机中,燃烧和排放物的形成过程进行了模拟,并与有无外部废气再循环(EGR)的测量结果进行了比较。引入了一种新的随机方法来模拟对流传热,该方法考虑了波动和流体-壁相互作用的影响。该模型包含在部分搅拌活塞流反应器(PaSPFR)方法,随机反应器模型(SRM)中,并用于研究EGR对压力,自燃时间以及CO和未燃烧碳氢化合物(HCs)排放的影响。该模型说明了温度不均匀性,并包括详细的化学机制来模拟燃烧室内的化学反应。湍流混合是通过与均值(IEM)模型进行交互来描述的。采用具有二阶时间分解技术的蒙特卡罗方法获得数值解。通过将模拟缸内压力历史记录和排放与Christensen和Johansson的测量值进行比较(SAE文件982454)来验证该模型。该模型预测的峰值压力,点火正时以及CO和HC排放与非EGR,38%EGR和47%EGR情况下的测量所得出的峰值之间具有极好的一致性。对于所研究案例的压力曲线之间的比较表明,点火正时和峰值压力取决于EGR。使用EGR,峰值压力降低,自燃被延迟。该模型还可以正确预测在变化的EGR下测得的排放中的趋势。

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