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Estimation of CO_2 reduction by parallel hard-type power hybridization for gasoline and diesel vehicles

机译:汽油和柴油车并联硬式混合动力技术减少CO_2的估算

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The purpose of this study is to investigate possible improvements in ICEVs by implementing fuzzy logic-based parallel hard-type power hybrid systems. Two types of conventional ICEVs (gasoline and diesel) and two types of HEVs (gasoline-electric, diesel electric) were generated using vehicle and powertrain simulation tools and a Matlab-Simulink application programming interface. For gasoline and gasoline-electric HEV vehicles, the prediction accuracy for four types of LDV models was validated by conducting comparative analysis with the chassis dynamometer and OBD test data. The predicted results show strong correlation with the test data. The operating points of internal combustion engines and electric motors are well controlled in the high efficiency region and battery SOC was well controlled within ± 1.6%. However, for diesel vehicles, we generated virtual diesel-electric HEV vehicle because there is no available vehicles with similar engine and vehicle specifications with ICE vehicle. Using a fuzzy logic-based parallel hybrid system in conventional ICEVs demonstrated that HEVs showed superior performance in terms of fuel consumption and CO_2 emission in most driving modes.
机译:本研究的目的是通过实施基于模糊逻辑的并行硬式动力混合动力系统来研究ICEV的可能改进。使用车辆和动力总成仿真工具以及Matlab-Simulink应用程序编程界面生成了两种传统的ICEV(汽油和柴油)和两种HEV(汽油电动,柴油电动)。对于汽油和汽油电动混合动力汽车,通过底盘测功机和OBD测试数据进行比较分析,验证了四种LDV模型的预测准确性。预测结果显示出与测试数据的高度相关性。在高效率区域内,内燃机和电动机的工作点得到了很好的控制,电池SOC则得到了很好的控制,误差在±1.6%之内。但是,对于柴油车辆,我们生成了虚拟的柴油电动HEV车辆,因为没有可用的车辆具有与ICE车辆相似的发动机和车辆规格。在常规ICEV中使用基于模糊逻辑的并行混合动力系统表明,在大多数驾驶模式下,HEV在燃油消耗和CO_2排放方面均表现出优异的性能。

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