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首页> 外文期刊>International Journal of Automotive Technology >MODIFIED ONE-STEP REACTION EQUATION FOR MODELING THE OXIDATION OF UNBURNED HYDROCARBONS IN ENGINE CONDITIONS
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MODIFIED ONE-STEP REACTION EQUATION FOR MODELING THE OXIDATION OF UNBURNED HYDROCARBONS IN ENGINE CONDITIONS

机译:修正的单步反应方程式用于模拟发动机中未燃烧烃的氧化

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摘要

The oxidation of unburned hydrocarbons from piston crevices was modeled using a modified one-step reaction equation. This new one-step oxidation model was developed by modifying the Arrhenius reaction rate coefficients of the conventional one-step reaction equation. The predictions of the new one-step oxidation model agree well with the results of the detailed chemical reaction mechanism in terms of the 90% oxidation time of the fuel. The effects of pressure and intermediate species in the burnt gas on the oxidation rate were also investigated and included as additional multiplying factors in the modification of the equation. To simulate the oxidation process of unburned hydrocarbons from a piston crevice, a two-dimensional computational mesh, based on the conventional engine geometry, was constructed with a fine mesh density at the regions of the piston crevice and cylinder wall. The number of cell layers in the cylinder was controlled according to the piston motion to model the out-flow of unburned hydrocarbons from the piston crevice during the expansion stroke. The effects of engine operational conditions on the oxidation rate were examined at several engine speeds and load conditions, and the sensitivity of the oxidation rate to the piston crevice volume was also evaluated. Finally, the new one-step oxidation model was applied to a three-dimensional computational mesh that modeled the three-dimensional engine geometry and piston-valve motions to simulate the oxidation of unburned hydrocarbons in a real engine condition.
机译:使用改进的一步反应方程对来自活塞缝隙的未燃烧碳氢化合物的氧化进行建模。通过修改常规一步反应方程式的Arrhenius反应速率系数,开发了这种新的一步氧化模型。就燃料的90%氧化时间而言,新的一步氧化模型的预测与详细的化学反应机理的结果非常吻合。还研究了燃烧气体中的压力和中间物质对氧化速率的影响,并将其作为方程式的修正中的附加乘数。为了模拟来自活塞缝隙的未燃烧碳氢化合物的氧化过程,基于常规发动机几何结构,在活塞缝隙和汽缸壁的区域以精细的网格密度构建了二维计算网格。根据活塞运动控制气缸中的孔层数,以模拟膨胀冲程期间未燃烧的碳氢化合物从活塞缝隙中流出。在几种发动机转速和负载条件下,检查了发动机工况对氧化速率的影响,并评估了氧化速率对活塞缝隙体积的敏感性。最后,将新的一步氧化模型应用于三维计算网格,该网格对三维发动机几何形状和活塞阀运动建模,以模拟真实发动机条件下未燃烧的碳氢化合物的氧化。

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