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Assessment of the Predictive Capabilities of a Combustion Model for a Modern Common Rail Automotive Diesel Engine

机译:燃烧模型对现代普通铁路汽车柴油机的预测能力评估

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The predictive capabilities of an innovative multizone combustion model DIPulse, developed by Gamma Technologies, were assessed in this work for a last generation common rail automotive diesel engine. A detailed validation process, based on an extensive experimental data set, was carried out concerning the predicted heat release rate, the in-cylinder pressure trace, as well as NOx and soot emissions for several operating points including both part load and full load points. After a preliminary calibration of the model, the combustion model parameters were then optimized through a Latin Hypercube Design of Experiment (DoE), with the aim of minimizing the RMS error between the predicted and experimental burn rate of several engine operating points, thus achieving a satisfactory agreement between simulation and experimental engine combustion and emissions parameters.
机译:由伽马技术开发的创新多型燃烧模型普通的预测能力在这项工作中进行了评估了最后一代公共铁路汽车柴油发动机。基于广泛的实验数据集的详细验证过程是关于预测的热释放速率,缸内压力迹线以及用于几个操作点的NOx和烟灰排放,包括部分负载和满载点。经过模型的初步校准,然后通过实验(DOE)的拉丁超立方体设计优化燃烧模型参数,目的是最小化几个发动机操作点的预测和实验烧伤率之间的rms误差,从而实现了一个仿真与实验发动机燃烧和排放参数之间的满意协议。

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