首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Optimal integrated energy management and shift control in parallel hybrid electric vehicles with dual-clutch transmission
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Optimal integrated energy management and shift control in parallel hybrid electric vehicles with dual-clutch transmission

机译:双离合器变速器的并联混合动力电动汽车最佳集成能源管理和换档控制

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This paper addresses the integration of the energy management and the shift control in parallel hybrid electric vehicles with dual-clutch transmission to reduce the fuel consumption, decrease the pollutant emissions, and improve the driving comfort simultaneously. Dynamic programming with a varying weighting factor in the cost function is proposed to balance the shift frequency and the fuel consumption for the power-split control and gear schedule design. Simulation results present that the drivability can be improved with a varying weighting factor due to fewer shift events while the fuel consumption is only slightly increased compared to dynamic programming with a constant weighting factor. A shift-energy-management strategy integrating the upshift and power-split control based on a multi-objective optimization is presented where model predictive control is employed to ensure engine load rate constraints. The strategy can smoothen the engine torque through torque compensation from the electric motor to prevent engine transient emissions resulting from a sudden load change. In a simulation study, the NOx and HC emissions could be reduced by 1.4% and 2.6% with 2% increase of the overall fuel consumption for the Federal Test Procedure 75 by smoothening the engine torque. For the New European Driving Cycle, 0.9% and 1.1% reduction of NOx and HC emissions could be achieved with only 0.3% more fuel consumption.
机译:本文解决了能源管理的整合和并联混合动力电动车辆的换档控制,双离合器变速器降低了燃料消耗,降低了污染物排放,同时提高了驾驶舒适性。提出了具有不同加权因子的动态编程,以平衡供电控制和齿轮时间表设计的换档频率和燃料消耗。模拟结果显示,由于较少的换档事件,与具有恒定加权因子的动态编程相比,燃料消耗略微增加,可以提高驾驶性。介绍了基于多目标优化的升档和功率分流控制的换档能量管理策略,其中采用模型预测控制来确保发动机负载率约束。该策略可以通过电动机的扭矩补偿使发动机扭矩平滑,以防止发动机瞬态发射由突然的负载变化产生。在模拟研究中,通过平滑发动机扭矩,NOx和HC排放可以减少1.4%和2.6%,对联邦测试程序75的整体燃料消耗增加2%。对于新的欧洲驾驶周期,减少NOx和HC排放的0.9%和1.1%,只有0.3%的燃料消耗。

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