用MD/正癸烷生物柴油替代物对CR-EGR进行更清洁燃烧的数值分析

Next Energy Pub Date : 2026-04-01 Epub Date: 2026-04-04 DOI:10.1016/j.nxener.2026.100603
Mehedi Hassan Pranta , Haeng Muk Cho , Anik Biswas , Md Sanney Ul Alam
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引用次数: 0

摘要

本研究在ANSYS Forte中使用高保真3D计算流体动力学来研究生物柴油混合物(B20, B50, B75)相对于基线柴油(D100)的燃烧和排放特性。利用表征良好的正癸烷/癸酸甲酯二元替代物,该研究系统地探索了宽压缩比(CR)扫描(11:1至18:1)对不同废气再循环(EGR)水平的化学稀释效应的热力学影响。结果表明,较高的生物柴油馏分延长了物理点火延迟并降低了制动功率,其中B75混合物与柴油相比降低了17.48%。当CR增加到18:1时,峰值气缸压力和温度显著升高,B20达到13.59 MPa和2913 K。相反,在基线CR下对B50混合物施加20%的EGR可有效抑制这些热力学峰值,分别为14.01%和20.62%。egr诱导的热抑制使B50的NOx排放量最低为0.61 g/kg燃料,相对于基线降低了99.58%。此外,与D100相比,B50混合燃料固有的含氧特性显著降低了一氧化碳(46.3%)和未燃烧碳氢化合物(50.18%)的排放量。虽然CR和EGR水平的升高通常会抑制峰值热释放率(HRR),但由于空间燃烧相位的复杂变化,B50混合物在cr15时的HRR显著增强了52.21%。最终,这些发现强调了热效率和动力排放形成之间的基本3D缸内权衡,确定了对先进生物柴油发动机的CR和EGR策略进行共同优化的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical analysis of the CR-EGR trade-offs for cleaner combustion in a diesel engine with an MD/n-decane biodiesel surrogate
This study uses high-fidelity 3D computational fluid dynamics in ANSYS Forte to investigate the combustion and emission characteristics of biodiesel blends (B20, B50, B75) relative to a baseline diesel (D100). Using a well-characterized n-decane/methyl decanoate binary surrogate, the research systematically explores the thermodynamic impacts of a wide compression ratio (CR) sweep (11:1 to 18:1) from the chemical dilution effects of varying exhaust gas recirculation (EGR) levels. Results indicate that higher biodiesel fractions extend the physical ignition delay and reduce brake power, with the B75 blend exhibiting a 17.48% reduction compared to diesel. Increasing the CR to 18:1 significantly elevates peak cylinder pressure and temperature, with B20 reaching 13.59 MPa and 2913 K. Conversely, applying 20% EGR to the B50 blend at the baseline CR effectively suppresses these thermodynamic peaks by 14.01% and 20.62%, respectively. This EGR-induced thermal suppression achieves a minimum NOx emission of 0.61 g/kg-fuel for B50, representing a 99.58% reduction relative to the baseline. Furthermore, the inherent oxygenated nature of the B50 blend demonstrates significant reductions in carbon monoxide (46.3%) and unburned hydrocarbon (50.18%) emissions compared to D100. While elevated CR and EGR levels generally dampen the peak heat release rate (HRR), the B50 blend demonstrates a notable 52.21% HRR intensification at CR 15 due to complex shifts in spatial combustion phasing. Ultimately, these findings highlight the fundamental 3D in-cylinder trade-offs between thermal efficiency and the formation of kinetic emissions, establishing the need to co-optimize CR and EGR strategies for advanced biodiesel-fueled engines.
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