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ENERGY MANAGEMENT CONTROL OF A HYBRID ELECTRIC VEHICLE BY INCORPORATING POWERTRAIN DYNAMICS

机译:通过合并动力动力学动力学的混合动力电动机的能量管理控制

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Energy management strategies in parallel Hybrid Electric Vehicles (HEVs) usually ignore effects of Internal Combustion Engine (ICE) dynamics and rely on static maps for required engine torque-fuel efficiency data. It is uncertain how neglecting these dynamics can affect fuel economy of a parallel HEV. This paper addresses this shortcoming by investigating effects of some major Spark Ignition (SI) engine dynamics and clutch dynamics on torque split management in a parallel HEV. The control strategy is implemented on a HEV model with an experimentally validated, dynamic ICE model. Simulation results show that the ICE and clutch dynamics can degrade performance of the HEV control strategy during the transient periods of the vehicle operation by 8.7% for city and highway driving conditions in a combined common North American drive cycle. This fuel penalty is often overlooked in conventional HEV energy management strategies. A Model Predictive Control (MPC) of torque split is developed by incorporating effects of the studied influencing dynamics. Results show that the integrated energy management strategy can improve the total energy consumption of HEV by more than 6% for combined Urban Dynamometer Driving Schedule (UDDS) and Highway Fuel Economy Driving Schedule (HWFET) drive cycles.
机译:平行混合动力电动车(HEV)的能源管理策略通常忽略内燃机(ICE)动态的影响,并依赖于所需发动机扭矩 - 燃料效率数据的静态地图。不确定忽视这些动态如何影响平行HEV的燃料经济性。本文通过调查了一些主要的火花点火(Si)发动机动力学和离合器动力学在并行HEV中的扭矩分体式管理中的影响来解决这种缺点。控制策略在HEV模型上实现,具有实验验证的动态冰模型。仿真结果表明,冰和离合器动力学在车辆运行的瞬态期间,在融合的北美北美驱动周期中的城市和公路驾驶条件下,在车辆运行的瞬态期间可能降低了HEV控制策略的性能。这种燃油罚款往往忽视了传统的HEV能量管理策略。通过掺入研究的影响动态的效果来开发扭矩分裂的模型预测控制(MPC)。结果表明,对于联合城市测力计驾驶时间表(UDDS)和公路燃料经济驾驶时间表(HWFET)驱动周期,综合能源管理策略可以提高HEV的总能耗超过6%。

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