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Optimization of HEV energy management strategy based on driving cycle modeling

机译:基于行驶周期模型的混合动力汽车能源管理策略的优化

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The fuel economy of hybrid electric vehicle (HEV) is sensitive to its driving cycle and energy management strategy. To improve the fuel economy of HEV, identification of driving condition and optimization of energy management strategy have drawn much attention over the last few years. Due to strong uncertainty with driving environment and traffic congestion, the Generalized Radial Neural Network (GRNN) is adopted to model and predict driving cycle in this paper. Then dynamic programming (DP) algorithm was improved and implemented in the HEV energy management strategy. Finally, simulation is carried out, and the results indicate that the fuel consumption of HEV could be decreased significantly based on the improved DP algorithm and driving cycle modeling presented in this paper.
机译:混合动力电动汽车(HEV)的燃油经济性对其行驶周期和能源管理策略敏感。为了提高混合动力汽车的燃油经济性,近年来,驾驶条件的识别和能源管理策略的优化引起了人们的广泛关注。由于在驾驶环境和交通拥堵方面存在很大的不确定性,因此本文采用广义径向神经网络(GRNN)对驾驶周期进行建模和预测。然后改进了动态规划算法,并在混合动力汽车能源管理策略中实现。最后进行了仿真,结果表明,基于本文提出的改进的DP算法和驾驶循环模型,可以大大降低混合动力汽车的燃油消耗。

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