首页> 外文会议>SAE World Congress and Exhibition >A Numerical Simulation Study on Improving the Thermal Efficiency of a Spark Ignited Engine - Part 1: Modeling of a Spark Ignited Engine Combustion to Predict Engine Performance Considering Flame Propagation, Knock, and Combustion Chamber Wall
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A Numerical Simulation Study on Improving the Thermal Efficiency of a Spark Ignited Engine - Part 1: Modeling of a Spark Ignited Engine Combustion to Predict Engine Performance Considering Flame Propagation, Knock, and Combustion Chamber Wall

机译:提高火花点火发动机热效率的数值模拟研究 - 第1部分:火花点火发动机燃烧的建模,以预测考虑火焰繁殖,爆震和燃烧室壁的发动机性能

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The first objective of this work is to develop a numerical simulation model of the spark ignited (SI) engine combustion, taking into account knock avoidance and heat transfer between in-cylinder gas and combustion chamber wall. Secondly, the model was utilized to investigate the potential of reducing heat losses by applying a heat insulation coating to the combustion chamber wall, thereby improving engine thermal efficiency. A reduction in heat losses is related to important operating factors of improving SI engine thermal efficiency. However, reducing heat losses tends to accompany increased combustion chamber wall temperatures, resulting in the onset of knock in SI engines. Thus, the numerical model was intended to make it possible to investigate the interaction of the heat losses and knock occurrence. The present paper consists of Part 1 and 2. Part 1 deals with the description of the numerical model and the fundamental characteristics of instantaneous temperature swings in the combustion chamber wall. The numerical model is developed by utilizing GT-POWER combined with three sub-models; a non-dimensional two-zone combustion model, an autoignition model in the unburned gas and an instantaneous heat transfer model in the combustion chamber wall. The combustion model considers the flame speeds affected by the in-cylinder conditions. The Shell model was utilized to predict autoignition. The heat transfer model in the combustion chamber wall calculates the instantaneous one-dimensional thermal conductivity, and further predicts wall surface and inside temperatures. The fluctuation range of calculated temperature swings is reasonably similar to measured data obtained in previous studies.
机译:这项工作的第一个目的是开发火花点燃(Si)发动机燃烧的数值模拟模型,考虑到汽缸气体和燃烧室壁之间的爆震避免和传热。其次,利用该模型来研究通过将隔热涂层施加到燃烧室壁上来减少热损失的电位,从而提高发动机热效率。减少热损耗与提高SI发动机热效率的重要操作因素有关。然而,减少热损失倾向于伴随着增加的燃烧室壁温度,导致Si发动机的爆震发作。因此,数值模型旨在能够研究热损失和爆震的相互作用。本文由第1部分和2.第1部分涉及数字模型的描述和燃烧室壁中瞬时温度摇摆的基本特征。通过利用GT功率与三个子模型结合开发了数值模型;非尺寸双区燃烧模型,在燃烧室壁中的燃烧气体和瞬时传热模型中的自燃模型。燃烧模型考虑受缸内条件影响的火焰速度。 shell模型用于预测自燃。燃烧室壁中的传热模型计算瞬时一维导热率,并进一步预测壁表面和内部温度。计算温度波动的波动范围与先前研究中获得的测量数据相似。

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