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New approaches to design of experiment modeling based on engine control levers and fuel properties

机译:基于发动机控制杆和燃料特性的实验建模设计的新方法

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In this paper, prediction of performance and emission of a single cylinder heavy duty diesel engine has been studied by considering "Partly Homogeneous Charge Compression Ignition" combustion. The fuel matrix consisted of 10 different diesel and diesel like fuels which were utilized for the entire investigation. First, with the help of a Principal Component Analysis (PCA) approach, the least correlated fuel properties were detected. The most independent fuel properties, as well as four engine control parameters were considered as independent DoE (Design of Experiment) parameters for engine response models. The EGR rate, boost pressure, rail pressure and SOI of early pilot injection for premixed combustion were varied as engine control levers. Separate DoE models including engine control levers plus 2-3 independent fuel properties were setup and analyzed. DoE tests have been performed at the test bench on a 2.1L single cylinder Heavy Duty Diesel Engine for each fuel. The DoE test results were carefully modeled and analyzed by a DoE program called ProCal. Afterwards, series of combined DoE models were virtually created. A V-Optimal regression model was considered for the modeling and separate strategies used for engine control parameters and fuel properties to derive reasonable models. Results show excellent predictions for a combination of all engine and fuel variables. Furthermore, prepared models can predict engine response to the defined premixed combustion at different operating points and impact of fuel properties at the certain areas of engine map.
机译:本文通过考虑“部分均匀的电荷压缩点火”燃烧,研究了对单缸重型柴油发动机的性能和排放的预测。燃料基质由10种不同的柴油和柴油等燃料组成,这些燃料如整个调查所用。首先,在主成分分析(PCA)方法的帮助下,检测到最少相关的燃料特性。最独立的燃料特性以及四个发动机控制参数被认为是发动机响应模型的独立DOE(实验设计)参数。预混燃烧早期试点注射的EGR速率,提升压力,轨道压力和SOI变化为发动机控制杆。独立的DOE模型,包括发动机控制杆加上2-3独立燃料特性并分析。为每种燃料的2.1L单缸重型柴油发动机上的测试台进行了DOE测试。 DOE测试结果经过仔细建模和分析,称为Procal。之后,实际上创建了一系列组合的DOE模型。考虑了用于发动机控制参数和燃料特性的模型和单独策略来推导合理模型的v-最佳回归模型。结果表明,对所有发动机和燃料变量的组合显示出优异的预测。此外,制备的模型可以预测发动机响应于在发动机地图的某些区域的不同操作点处的不同操作点和燃料特性的影响。

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