小型发动机进气道结构对缸内性能影响的研究

B. Wahono, Ardhika Setiawan, O. Lim, Achmad Praptijanto, Y. Putrasari
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引用次数: 1

摘要

众所周知,发动机气缸内的气流对发动机的性能有很大影响。因此,本研究的主要目的是利用仿真模型评估缸内小型发动机的流动特性,以了解在不同进气门升程条件下,在等效额定发动机转速下,进气道配置的影响。使用CAD软件创建几何引擎,然后使用CONVERGE软件导出和分析。紊流模型是用修正模型(RNG) k- ε来观测的。压力边界条件用于确定进排气口的压力流体。结果表明,进气道的变化组合对旋流比值有影响。同一方向的螺旋进气道在进气和压缩行程时的旋流比最高,约为原型号气门升程的13倍。进气道的变化组合也对转捩比产生影响,最大转捩比出现在同一方向的螺旋口,在460°CA处最大增加约83%,最小转捩比出现在相反方向的螺旋口,在460°CA处最大减少约83%。进气道的变化组合对增加湍流动能也有一定的作用,同方向的最大增幅为300%,相反方向的最大增幅为240%,同方向的最大增幅为35%,相反方向的最大增幅为40%。最后得出结论,本文所进行的分析对发动机的流量预测和燃烧室的循环优化是有用的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on the Effect of the Intake Port Configuration on the In-cylinder of Small Engine
The airflow in the engine cylinder is known to greatly affect the performance of the engine. Therefore, the main objective of this study is to evaluate the flow characteristics of the in-cylinder small engine to see the effect of the intake port configuration at equivalent rated engine speed using simulation model under various intake valve lift conditions. Geometry engine created using CAD software, then exported and analyzed using CONVERGE. The turbulence model is observed using a modified model (RNG) k-ɛ. The pressure boundary conditions are used to determine the pressure fluid at the intake and exhaust port. The result shows that the change combination of the intake port give effect to swirl ratio value. The helical intake port with same direction have the highest swirl ratio during intake and compression stroke around thirteen times compare to the original model in valve lift maximum. The change combination of the intake port also give effect to the tumble ratio where the maximum tumble ratio occurs at the helical port with same direction where the maximum increase at 460 °CA around 83 % and the minimum tumble ratio occurs at helical port with opposite direction where the maximum decrease at 460 °CA around 83 %. The change combination of the intake port also give effect to increase the turbulent kinetic energy where the maximum increase around 300 % for model with same direction and 240 % for model with opposite direction and length scale also increase 35 % for model with same direction and 40 % for model with opposite direction. Finally, it is concluding that the analysis carried in this work is useful in predicting the flow and in-turn optimizing combustion chamber of the engine.
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