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Mode transition coordinated control for a compound power-split hybrid car

机译:复合动力分流混合动力汽车的模式过渡协调控制

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With a compound power-split transmission directly connected to the engine in hybrid cars, dramatic fluctuations in engine output torque result in noticeable jerks when the car is in mode transition from electric drive mode to hybrid drive mode. This study designed a mode transition coordinated control strategy, and verified that strategy's effectiveness with both simulations and experiments. Firstly, the mode transition process was analyzed, and ride comfort issues during the mode transition process were demonstrated. Secondly, engine ripple torque was modeled using the measured cylinder pumping pressure when the engine was not in operation. The complete dynamic plant model of the power-split hybrid car was deduced, and its effectiveness was validated by a comparison of experimental and simulation results. Thirdly, a coordinated control strategy was designed to determine the desired engine torque, motor torque, and the moment of fuel injection. Active damping control with two degrees of freedom, based on reference output shaft speed estimation, was designed to mitigate driveline speed oscillations. Carrier torque estimation based on transmission kinematics and dynamics was used to suppress torque disturbance during engine cranking. The simulation and experimental results indicate that the proposed strategy effectively suppressed vehicle jerks and improved ride comfort during mode transition.
机译:在混合动力汽车中,通过将复合动力分配变速器直接连接至发动机,当汽车处于从电驱动模式到混合动力驱动模式的转换过程中,发动机输出扭矩的剧烈波动会导致明显的颠簸。这项研究设计了一种模式转换协调控制策略,并通过仿真和实验验证了该策略的有效性。首先,对模式转换过程进行了分析,并论证了模式转换过程中的乘坐舒适性问题。其次,当发动机不运转时,使用测得的气缸泵送压力对发动机脉动转矩建模。推导了动力分配混合动力汽车的完整动态工厂模型,并通过比较实验和仿真结果验证了其有效性。第三,设计了协调控制策略来确定所需的发动机扭矩,电动机扭矩和燃油喷射时刻。基于参考输出轴速度估算,具有两个自由度的主动阻尼控制旨在减轻传动系速度波动。基于变速器运动学和动力学的载波扭矩估计被用来抑制发动机启动过程中的扭矩干扰。仿真和实验结果表明,所提出的策略有效地抑制了车辆的颠簸并提高了模式转换期间的乘坐舒适性。

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