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A Numerical Simulation Study on Improving the Thermal Efficiency of a Spark Ignited Engine - Part 2: Predicting Instantaneous Combustion Chamber Wall Temperatures, Heat Losses and Knock

机译:提高火花点火式发动机热效率的数值模拟研究-第2部分:预测瞬时燃烧室壁温,热损失和爆震

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The objective of this work is to develop a numerical simulation model of spark ignited (SI) engine combustion and thereby to investigate the possibility of reducing heat losses and improving thermal efficiency by applying a low thermal conductivity and specific heat material, so-called heat insulation coating, to the combustion chamber wall surface. A reduction in heat loss is very important for improving SI engine thermal efficiency. However, reducing heat losses tends to increase combustion chamber wall temperatures, resulting in the onset of knock in SI engines. Thus, the numerical model made it possible to investigate the interaction of the heat losses and knock occurrence and to optimize spark ignition timing to achieve higher efficiency. Part 2 of this work deals with the investigations on the effects of heat insulation coatings applied to the combustion chamber wall surfaces on heat losses, knock occurrence and thermal efficiency. To reduce engine heat losses and improve the thermal efficiency, the heat insulation coating was applied to the combustion chamber wall surfaces. Specifically, wall surface temperatures, heat losses and thermal efficiency corresponding to the thickness of the material and the compression ratios were investigated by using the numerical model described in Part 1. In case of the combustion chamber wall surface entirely coated with the material at low load, applying the heat insulation material can make the MBT (Minimum advance for best torque) earlier, resulting in highly-increased thermal efficiency. The results imply that low thermal conductivity and low specific heat materials should be coated at proper locations with an optimized thickness to improve overall thermal efficiency.
机译:这项工作的目的是开发一种火花点火(SI)发动机燃烧的数值模拟模型,从而研究通过应用低导热率和特殊热材料(所谓的隔热材料)来减少热量损失并提高热效率的可能性。涂层,到燃烧室壁表面。减少热损失对于提高SI发动机的热效率非常重要。但是,减少热量损失往往会增加燃烧室壁的温度,从而导致SI发动机爆震。因此,数值模型使得研究热损失和爆震发生的相互作用以及优化火花点火正时以获得更高的效率成为可能。这项工作的第2部分研究了对应用于燃烧室壁表面的隔热涂料对热损失,爆震发生和热效率的影响。为了减少发动机的热量损失并提高热效率,在燃烧室壁表面上涂了隔热涂层。具体而言,使用第1部分中所述的数值模型研究了与材料厚度和压缩比相对应的壁表面温度,热损失和热效率。在低负荷下燃烧室壁表面完全覆盖有材料的情况下,应用隔热材料可使MBT(用于最佳扭矩的最小提前量)更早,从而大大提高热效率。结果表明,应在适当的位置以最佳厚度涂覆低导热率和低比热材料,以提高整体热效率。

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