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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Numerical simulations for evaluating the impact of advanced insulation coatings on H-2 additivated gasoline lean combustion in a turbocharged spark-ignited engine
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Numerical simulations for evaluating the impact of advanced insulation coatings on H-2 additivated gasoline lean combustion in a turbocharged spark-ignited engine

机译:评估高级绝缘涂层对涡轮增压火花点火发动机H-2累积汽油稀燃燃烧的影响的数值模拟

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摘要

This paper presents a numerical methodology based on Computational Fluid Dynamics (CFD) simulations to understand the physics of heat losses through the cylinder walls coated with different materials, taking into account other important factors such as surface roughness and near wall flow velocity in a turbocharged spark ignited (SI) engine. Engine closed cycle simulations have been performed to estimate the thermodynamic evolution of the charge inside the cylinder and therefore, to evaluate the effect of roughness on heat transfer and combustion at real operating conditions. The model has been validated by using experimental data for two different steady-state operation conditions of a fully instrumented engine. In general, the maximum rate of heat release is reduced as the roughness is increased. Observed trends indicate that the heat transfer variation is mainly caused by changes in the combustion process due to the surface roughness, rather than to the effects of the coating material properties/characteristics (the increase of the effective contact area, porosity, etc.). Lastly, the comparison between uncoated and coated engine have shown that maximal gains around 5% in heat loss could be achieved, with very limited efficiency improvement, whereas the knock tendency increases.
机译:本文介绍了基于计算流体动力学(CFD)模拟的数值方法,以了解通过涂有不同材料的气缸壁的热损失物理学,考虑到其他重要因素,如表面粗糙度和涡轮增压火花中的墙壁流速附近点燃(SI)发动机。已经进行了发动机关闭循环模拟以估计气缸内部电荷的热力学演变,因此,评估粗糙度对实际操作条件下的热传递和燃烧的影响。该模型通过使用完全仪表发动机的两个不同稳态操作条件的实验数据验证。通常,随着粗糙度增加,减少了最大热释放速率。观察到的趋势表明传热变化主要由表面粗糙度导致的燃烧过程的变化引起,而不是涂层材料特性/特征的影响(有效接触面积,孔隙率等的增加)。最后,未涂层和涂层发动机之间的比较显示,可以实现热量损失大约5%的最大增益,具有非常有限的效率,提高,而爆震趋势增加。

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