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首页> 外文期刊>Journal of Energy Resources Technology >Computational Study to Identify Feasible Operating Space for a Mixed Mode Combustion Strategy-A Pathway for Premixed Compression Ignition High Load Operation
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Computational Study to Identify Feasible Operating Space for a Mixed Mode Combustion Strategy-A Pathway for Premixed Compression Ignition High Load Operation

机译:确定混合模式燃烧策略可行运行空间的计算研究-预混合压缩点火高负荷运行的途径

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A mixed mode combustion strategy with a premixed compression ignition (PCI) combustion event and a mixing controlled load extension injection was investigated in the current study. Computational fluid dynamics (CFD) modeling was used to perform a full factorial design of experiments (DOE) to study the effects of premixed fuel fraction, load extension injection timing, and exhaust gas recirculation (EGR). The goal of the study was to identify a feasible operating space and demonstrate a pathway to enable high-load operation with the mixed mode combustion strategy. The gross-indicated efficiency (GIE) increased with premix fraction, but the maximum premix fraction was constrained by pressure rise rate which confined the feasible operating space to a premix fuel mass range of 70–80%. Injecting part of the premixed fuel as a stratified injection relieved the pressure rise rate constraint considerably through in-cylinder equivalence ratio stratification. This allowed operation with premix fuel mass of 70% and higher and EGR rates less than 40% which resulted in improved GIE of the late cycle injection cases. It was also identified that by targeting the fuel from the stratified injection into the squish region, there is improved oxygen availability in the bowl for the load extension injection, which resulted in reduced soot emissions. This allowed the load extension injection to be brought closer to top dead center while meeting the soot constraint, which further improved the GIE. Finally, the results from the study were used to demonstrate high-load operation at 20 bar and 1300 rev/min.
机译:在当前研究中,研究了具有预混合压缩点火(PCI)燃烧事件和混合控制的负荷扩展喷射的混合模式燃烧策略。计算流体动力学(CFD)建模用于执行实验的全因子设计(DOE),以研究预混燃料比例,负载扩展喷射正时和废气再循环(EGR)的影响。该研究的目的是确定可行的运行空间,并展示一种通过混合模式燃烧策略实现高负荷运行的途径。总指示效率(GIE)随预混物分数的增加而增加,但最大预混物分数受升压率的限制,升压率将可行的工作空间限制在预混燃料质量的70-80%之间。通过缸内当量比分层,将部分预混合燃料作为分层喷射进行喷射,大大缓解了压力上升率的限制。这允许预混合燃料质量为70%或更高且EGR率小于40%的情况下运行,从而改善了后期喷射情况下的GIE。还已经确定,通过将分层喷射的燃料对准挤压区域,碗中用于负荷扩展喷射的氧气可用性得到改善,从而减少了烟尘排放。这样可以使载荷扩展注入更接近上止点,同时满足烟灰约束,从而进一步改善了GIE。最后,研究的结果被用来证明在20 bar和1300转/分钟的高负载下运行。

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