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Combustion chamber design for a high-performance natural gas engine: CFD modeling and experimental investigation

机译:高性能天然气发动机的燃烧室设计:CFD建模和实验研究

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The present paper is focused on the development of a high-performance, monofuel, spark ignition engine running on natural gas, featuring a high volumetric compression ratio and a variable valve actuation system. More specifically, the cylinder head geometry effect has been analyzed and the compression ratio has been optimized by means of steady-state and transient simulation activity, as well as of an extensive experimental campaign. The compression ratio effect was mainly investigated by means of experimental tests but a few 3D simulations were also run in order to quantify its impact on the in-cylinder tumble and turbulence. The main novelty of the paper are, first, the adoption of very high engine compression ratio values, second, the combined optimization of the cylinder head design and compression ratio. The main results can be summarized as follows. The engine configuration with mask showed a decrease in the average discharge coefficient by 20-30% and an increase in the tumble ratio by around 200% at partial load. Moreover, the simulation of the engine cycle indicated that the presence of the piston modifies the tumble structure with respect to the steady-state simulation case. An increase in the tumble number and turbulence intensity by around 90% and 10%, respectively, are obtained for the case with mask at 2000 rpm and 4 bar. With reference to the combustion duration, on an average, the presence of the masking surface led to a reduction of the combustion duration (from 1% to 50% of mass fraction burned) between 2 and 6 degrees. As far as the engine compression ratio is concerned, the value of 13 was finally selected as the best compromise between combustion variability, engine performance at full load and fuel consumption at partial load.
机译:本文专注于开发高性能,单纽卢,火花点火发动机在天然气上运行,具有高容积压缩比和可变阀致动系统。更具体地,已经分析了气缸盖几何效果,并且通过稳态和瞬态仿真活动以及广泛的实验活动进行了压缩比。压缩比效应主要通过实验测试来研究,但是还运行了几种3D模拟,以便量化其对缸内滚筒和湍流的影响。本文的主要新颖性是首先采用非常高的发动机压缩比值,第二,结合优化气缸盖设计和压缩比。主要结果可以概括如下。具有掩模的发动机配置显示平均放电系数的降低20-30%,并且在部分载荷时,滚珠比例增加约200%。此外,发动机循环的模拟表明,活塞的存在相对于稳态模拟壳体改变滚动结构。在2000rpm和4巴的掩模的情况下,分别在掩模和4巴的情况下获得翻转数和湍流强度的增加约90%和10%。参考燃烧持续时间,平均地,掩模表面的存在导致燃烧持续时间的降低(从燃烧的质量分数的1%至50%)之间的燃烧持续时间(从烧焦的1%到50%)之间。就发动机压缩比而言,最终选择13的值作为燃烧可变性,发动机性能在局部负荷下的燃烧变异性和燃料消耗之间的最佳折衷。

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