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Control Strategy of Hybrid Electric Vehicle with Double Planetary Gear Sets

机译:双行星齿轮组混合动力电动汽车控制策略

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Hybrid Electric Vehicles with a power split system provide a variety of possibilities to promote the fuel economy of vehicles and better adapt to various driving conditions. In this paper, a new power split system of a hybrid electric bus which consists of double planetary gear sets and a clutch is introduced. The system is able to decouple both the torque and speed of the engine from the road load, which makes it possible for the engine to operate on its optimal operation line (OOL). Considering the features of the system configuration and bus driving cycle, the driving mode of the bus is divided into Electric Vehicle (EV) mode, Electric Variable Transmission (EVT) mode and Parallel mode. By controlling the engagement of the clutch at high vehicle speed (after the mechanical point), the system operates in the parallel mode rather than EVT mode. This avoids the problem that the system efficiency sharply declines in high speed region which EVT configurations are generally faced with. Accordingly, a control strategy based on the engine OOL is proposed and a corresponding co-simulation model on the platform of Matlab/Simulink and AVL/Cruise is established. The simulation results verify that the bus is able to cover the dynamic performance requirements under UDDS cycle and reaches a fuel consumption as low as 17.84L/100km.
机译:具有动力分配系统的混合动力电动汽车提供了各种可能性来促进车辆的燃料经济性,更好地适应各种驾驶条件。在本文中,引入了由双行星齿轮组和离合器组成的混合动力电动总线的新电力分流系统。该系统能够从道路负载中与发动机的扭矩和速度分离,这使得发动机可以在其最佳操作线上操作(OOL)。考虑到系统配置和总线驱动周期的特征,总线的驱动模式分为电动车辆(EV)模式,电变速器(EVT)模式和并联模式。通过控制离合器在高车速(在机械点之后)的接合,系统以平行模式而不是EVT模式操作。这避免了在EVT配置通常面对的高速区域中急剧下降的系统效率大幅下降的问题。因此,提出了一种基于发动机OOL的控制策略,并且建立了MATLAB / SIMULINK和AVL /巡航平台上的相应共模模型。仿真结果验证了总线能够在UDDS周期下覆盖动态性能要求,达到低至17.84L / 100km的燃油消耗。

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