基于CFD的贫燃天然气发动机性能与燃烧研究

S. Sahoo, Srinibas Tripathy, D. Srivastava
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引用次数: 5

摘要

为满足严格的排放要求,天然气被广泛应用于顺序喷油发动机。精益燃烧是提高火花点火发动机燃油经济性的途径之一。稀燃发动机燃烧过程中的不稳定性是发动机研究的主要挑战之一。在本研究中,采用计算流体动力学(CFD)模型,在大范围的空气/燃料当量比下,对稀燃顺序喷射压缩天然气(CNG)发动机的性能和燃烧特性进行了数值研究。采用层流火焰速度模型对天然气燃烧过程进行了详细的化学动力学分析,捕捉了燃烧室内的稀薄燃烧工况。性能分析采用燃烧压力、指示平均有效压力(IMEP)和放热,燃烧分析采用火焰发展角(ca10)、燃烧持续时间、热效率。结果表明,在给定的火花时刻,随着空气/燃料当量比的增加,由于可用能量不足,稀薄燃烧混合物产生的总功率输出量减少,IMEP降低。此外,天然气较低的燃烧速度特性延长了燃烧时间,其中大量的总能量在上止点后释放。在稀薄燃烧条件下,由于延迟点火正时,最佳点火正时(MBT)随着空气/燃料当量比的增加而取得最大IMEP的进展。CFD模型成功地捕捉了稀释效应,说明了未来设计火花点燃天然气发动机时需要考虑的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance and Combustion Investigation of a Lean Burn Natural Gas Engine Using CFD
Natural gas is widely used in sequentially port fuel injection engine to meet stringent emission regulation. Lean burn operation is one of the ways to improve spark-ignition engine fuel economy. The instability in the combustion process of the lean burn engine is one of the major challenges for engine research. In this study, the performance and combustion characteristics of a lean burn sequential injection compressed natural gas (CNG) engine were investigated numerically using computational fluid dynamics (CFD) modeling over a wide range of air/fuel equivalence ratio. A detailed chemical kinetic mechanism was used for natural gas combustion along with laminar flame speed model to capture lean burn operating condition within the combustion chamber. Combustion pressure, indicated mean effective pressure (IMEP), and heat release were analyzed for performance analysis, whereas flame development angle (CA 10), combustion duration, thermal efficiency were taken for combustion analysis. The results show that on increasing air/fuel equivalence ratio at a given spark timing, IMEP decreases as the lean burn mixture produces less amount of gross power output due to insufficient available energy. Moreover, lower burning velocity characteristic of natural gas extends the combustion duration, where a substantial amount of total energy released after top dead center. It is also seen that optimum spark timing (MBT) for maximum IMEP advances with an increase in air/fuel equivalence ratio due to late ignition timing under lean burn condition. CFD model successfully captures the effect of dilution to illustrate the considerations to design future combustion engine for spark ignited natural gas engine.
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