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Adaptive Energy Management Strategy for a Hybrid Vehicle Using Energetic Macroscopic Representation

机译:基于能量宏观表示的混合动力汽车自适应能量管理策略

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The Energetic Macroscopic Representation is used in this paper to model a pre-transmission parallel hybrid electric vehicle and its control and energy management system. Since optimizing energy management onboard is among the key factors in reducing consumption of hybrid vehicles, several strategies are developed in the literature such as instantaneous-optimization rule-based strategies and global-optimization strategies; however, being implemented separately and for different purposes. For instance, rule-based strategies serve for real-time operation, where the global-optimization strategies for benchmarking, as it lacks the ability to be used in real-time control. Hence, the combination of both strategies would result in close-to-optimal energy consumption through a real-time control system. Therefore, a simple adaptive rule-based strategy is presented in this study, based on short-term driving pattern recognition and the global optimization routine of dynamic programming.
机译:本文使用能量宏观表示法对变速箱并联混合动力电动汽车及其控制和能源管理系统进行建模。由于优化车载能源管理是减少混合动力汽车消耗的关键因素之一,因此文献中提出了几种策略,例如基于即时优化规则的策略和全局优化策略;但是,分别实施和出于不同目的而实施。例如,基于规则的策略可用于实时操作,而全局优化策略用于基准测试,因为它缺乏用于实时控制的能力。因此,两种策略的组合将通过实时控制系统导致接近最佳的能耗。因此,本研究基于短期驾驶模式识别和动态规划的全局优化程序,提出了一种基于规则的简单自适应策略。

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