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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Computationally Efficient Whole-Engine Model of a Cummins 2007 Turbocharged Diesel Engine
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Computationally Efficient Whole-Engine Model of a Cummins 2007 Turbocharged Diesel Engine

机译:康明斯2007涡轮增压柴油发动机的高效计算全发动机模型

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This paper describes an accurate, flexible, and computationally efficient whole engine model incorporating a multizone, quasidimension combustion submodel for a 6.7-l six-cylinder turbocharged diesel engine with cooled exhaust gas recirculation (EGR), cooled air, and multiple fuel injections. The engine performance and NO_x emissions predicative capability of the model is demonstrated at 22 engine operating conditions. The only model inputs are physical engine control module "control actions," including injection rates, injection timings, EGR valve position, and variable geometry turbocharger rack position. The model is run using both "open" and "closed" loop control strategies for air/EGR path control, in both cases achieving very good correlation with experimental data. Model outputs include in-cylinder pressure and heat release, torque, combustion timing, brake specific fuel consumption, EGR flow rate, air flow rate, exhaust and intake pressure, and NO_x emissions. The model predicts engine performance and emissions with average absolute errors within 5% and 18%, respectively, of true values with "open-loop" air/EGR control, and within 5% and 11% with "closed-loop" air/EGR control. In addition, accurate prediction of the coupling of the in-cylinder combustion and emission-production processes with the boosted, cooled air/EGR gas dynamics is a key characteristic of the model.
机译:本文描述了一种精确,灵活且计算效率高的整体发动机模型,该模型结合了多区域拟定燃烧子模型,该模型适用于6.7升六缸涡轮增压柴油发动机,具有冷却的废气再循环(EGR),冷却的空气和多次燃油喷射。在22种发动机工况下证明了该模型的发动机性能和NO_x排放预测能力。唯一的模型输入是物理发动机控制模块“控制动作”,包括喷射率,喷射正时,EGR阀位置和可变几何涡轮增压器齿条位置。使用用于空气/ EGR路径控制的“开环”和“闭环”控制策略来运行模型,在两种情况下均与实验数据实现了很好的相关性。模型输出包括缸内压力和热量释放,扭矩,燃烧正时,制动器特定燃料消耗,EGR流量,空气流量,排气和进气压力以及NO_x排放量。该模型使用“开环”空气/ EGR控制预测发动机性能和排放,其平均绝对误差分别在真值的5%和18%之内,在“闭环”空气/ EGR控制下分别为真实值的5%和11%之内控制。此外,精确预测缸内燃烧和排放产生过程与增强的冷却空气/ EGR气体动力学的耦合是该模型的关键特性。

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