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A Detailed Multi-Zone Thermodynamic Simulation For Direct-Injection Diesel Engine Combustion

机译:直喷式柴油机燃烧的详细多区域热力学模拟

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摘要

A detailed multi-zone thermodynamic simulation has been developed for the direct-injection (DI) diesel engine combustion process. For the purpose of predicting heterogeneous type combustion systems, the model explores the formation of pre-ignition radicals, start of combustion, and eventual heat release. These mechanisms are described based on the current understanding and knowledge of the diesel engine combustion acquired through advanced laser-based diagnostics. Six zones are developed to take into account the surrounding bulk gas, liquid- and vapor-phase fuel, pre-ignition mixing, fuel-rich combustion products as well as the diffusion flame combustion products. A three-step phenomenological soot model and a nitric oxide emission model are applied based on where and when each of these reactions mainly occurs within the diesel fuel jet evolution process.The simulation is completed for a 4.5 liter, inline four-cylinder diesel engine for a range of operating conditions. Specifically, the engine possesses a compression ratio of 16.6, and has a bore and stroke of 106 and 127 mm. The results suggest that the simulation is able to accurately reproduce the fuel jet evolution and heat release process for conventional diesel engine combustion conditions. The soot and nitric oxide models are able to qualitatively predict the effects of various engine parameters on the engine-out emissions. In particular, the detailed thermodynamics and characteristics with respect to the combustion and emission formation processes are investigated for different engine speed/loads, injection pressures and timings, and EGR levels. The local thermodynamic properties and energy, mass distributions obtained from the simulation offer some fundamental insights into heterogeneous type combustion systems. The current work provides opportunities to better study and understand the diesel engine combustion and emission formation mechanisms for conventional diesel engine combustion modes. The flexible, low computational cost features of this simulation result in a convenient tool for conducting parametric studies, and benefits for engine control and diagnostics.
机译:对于直接喷射(DI)柴油机燃烧过程,已经开发了详细的多区域热力学模拟。为了预测非均质类型的燃烧系统,该模型探索了提前点火自由基的形成,燃烧的开始以及最终的热量释放。这些机制是基于通过高级基于激光的诊断获得的对柴油机燃烧的当前了解和知识进行描述的。开发六个区域时要考虑到周围的散装气体,液相和气相燃料,预点火混合,富燃料燃烧产物以及扩散火焰燃烧产物。基于这些反应主要发生在柴油机燃料喷射过程中的时间和地点,应用了三步现象烟尘模型和一氧化氮排放模型。完成了对4.5升直列四缸柴油发动机的仿真一系列的工作条件。具体地说,发动机的压缩比为16.6,缸径和冲程分别为106和127 mm。结果表明,该模拟能够准确地再现常规柴油机燃烧条件下的燃料喷射演变和放热过程。烟尘和一氧化氮模型能够定性地预测各种发动机参数对发动机尾气排放的影响。特别是,针对不同的发动机转速/负载,喷射压力和正时以及EGR水平,研究了有关燃烧和排放形成过程的详细热力学和特性。通过模拟获得的局部热力学性质和能量,质量分布为异构燃烧系统提供了一些基本见识。当前的工作为更好地研究和理解常规柴油机燃烧模式的柴油机燃烧和排放形成机理提供了机会。这种模拟的灵活,低计算成本特性为进行参数研究提供了方便的工具,并为发动机控制和诊断带来了好处。

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    Xue Xingyu 1985-;

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