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Numerical Investigation of In-Cylinder Flow Characteristics of Hydrogen-Fuelled Internal Combustion Engine

机译:氢燃料内燃机缸内流动特性的数值研究

摘要

This paper addresses the computational fluid dynamics (CFD) simulation to investigate the in-cylinder flow characteristics of 2D combustion chamber for a hydrogen-fuelled four-stroke internal combustion engine. CFD simulation has been carried out using commercial CFD codes. The engine speed was varied from 1000 to 3000 rpm, the range of equivalent ratio from 0.6 to 1.0 and the crank angle from 0 to 720 degrees in this study. The effect of the engine speed and equivalence ratio on the flow-fieldudcharacteristics and volumetric efficiency are investigated in the motoring condition. The increase of engine speed gives a more efficient diffusion process for hydrogen and gives a more homogeneous air–fuel mixture structure. The characteristics of the flow-field are represented by the in-cylinder pressure and temperature distribution as well as the contours of the hydrogen mass fraction for different engine speeds. The acquired results show the maximum in-cylinder temperature and pressure obtained of 650 K and 1.143 MPa at the engine speed of 3000 rpm respectively. It can be seen that the engine speed and equivalence ratio are strongly related to the volumetric efficiency. The results show that the volumetric efficiency increases linearly with increase of the engine speed, but decreases with increase of the equivalence ratio. The results obtained from theudsimulation can be employed to examine the homogeneity of the air–fuel mixture structure for a better combustion process and engine performance.
机译:本文介绍了计算流体动力学(CFD)模拟,以研究氢燃料四冲程内燃机的二维燃烧室的缸内流动特性。已经使用商业CFD代码进行了CFD模拟。在这项研究中,发动机转速从1000到3000 rpm不等,当量比的范围从0.6到1.0,曲柄角从0到720度。研究了发动机转速和当量比对汽车行驶状态下的流场,特性和容积效率的影响。发动机转速的提高使氢的扩散过程更有效,并使空气燃料混合物的结构更加均匀。流场的特性由缸内压力和温度分布以及不同发动机转速下氢质量分数的轮廓表示。获得的结果表明,在3000 rpm的发动机转速下,缸内最高温度和压力分别为650 K和1.143 MPa。可以看出,发动机转速和当量比与容积效率密切相关。结果表明,容积效率随发动机转速的增加而线性增加,但随当量比的增加而减小。从模拟中获得的结果可用于检查空气燃料混合物结构的均质性,以获得更好的燃烧过程和发动机性能。

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