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Dynamic modeling of the electro-mechanical configuration of the Toyota Hybrid System series/parallel power train

机译:丰田混合动力系统系列/并联动力总成机电配置的动态建模

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The hybridization of the conventional thermal vehicles nowadays constitutes a paramount importance for car manufacturers, facing the challenge of minimizing the consumption of the road transport. Although hybrid power train technologies did not converge towards a single solution, series/parallel power trains with power-split electromechanical transmissions prove to be the most promising hybrid technology. In fact, these power trains show maximum power train overall efficiency and maximum fuel reduction in almost all driving conditions compared to the conventional and other hybrid power trains. This paper addresses the model and design of the electro-mechanical configuration of one of the most effective HEV power trains: case study of the 2nd generation Prius. It presents the simulation work of the overall operation of the Toyota Hybrid System (THS-II) of the Prius, and explores not only its power-split eCVT innovative transmission system but also its overall supervision controller for energy management. The kinematic and dynamic behaviors of the THS-II power train are explained based on the power-split aspect of its transmission through a planetary gear train. Then, the possible regular driving functionalities that result from its eCVT operation and the energy flow within its power train are outlined. A feed-forward dynamic model of the studied power train is next proposed, supervised by a rule-based engineering intuition controller. The energy consumption of the THS-II proposed model has been validated by comparing simulation results to published results on European, American and Japanese regulatory driving cycles.
机译:如今,常规热力汽车的混合动力对汽​​车制造商而言至关重要,因为它们面临着将道路运输的消耗降至最低的挑战。尽管混合动力总成技术并没有朝着单一解决方案收敛,但是具有功率分配机电变速箱的串联/并联动力总成被证明是最有前途的混合技术。实际上,与常规和其他混合动力总成相比,这些动力总成在几乎所有驾驶条件下均显示出最大的动力总成整体效率和最大的燃油节省。本文介绍了最有效的混合动力汽车动力总成之一的机电配置的模型和设计:第二代普锐斯的案例研究。它介绍了普锐斯丰田混合动力系统(THS-II)总体运行的仿真工作,不仅探讨了其动力分配式eCVT创新型变速箱系统,而且还探讨了其能源管理的总体监控控制器。 THS-II动力总成的运动学和动力学行为基于其通过行星齿轮系的传动的动力分配方面进行了解释。然后,概述了由其eCVT操作和其动力传动系统内的能量流产生的可能的常规驾驶功能。接下来,在基于规则的工程直觉控制器的监督下,提出了所研究动力总成的前馈动态模型。通过将仿真结果与欧洲,美国和日本监管驾驶周期的已发布结果进行比较,已验证了THS-II提出的模型的能耗。

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