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Rule-Based Fuzzy Gain-Scheduling PI Controller to Improve Engine Speed and Power Behavior in a Power-split Hybrid Electric Vehicle

机译:基于规则的模糊增益调度PI控制器可改善动力分配混合动力汽车的发动机转速和功率性能

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Environmental awareness has resulted in greater emphasis on developing more environmentally friendly and fuel efficient vehicles. Hybrid electric vehicles (HEVs) have been considered a viable option towards achieving these goals. Ford Motor Company developed a full hybrid electric vehicle with an e-CVT (electronically controlled continuously variable transmission) or power-split hybrid powertrain with an integrated motor and generator. The power-split hybrid system uses planetary gear sets to connect an engine, a generator, and a motor. This HEV powertrain exhibits great potential to improve fuel economy by enabling the engine to operate at its most efficient region independent of the vehicle speed. To achieve fuel economy improvements of the power-split hybrid system, high-voltage (HV) battery power management is critical. To control actual HV battery power in such vehicles, a sophisticated control system is essential which controls engine power and thereby engine speed to achieve the desired HV battery maintenance power. Conventional approaches use proportional-integral (PI) control systems to control the actual HV battery power in power-split hybrid system, which can sometimes result in either overshoots of engine speed and power or degraded response and settling times due to the nonlinearity of the power-split hybrid system. Such an overshoot is often objectionable to customers, which see engine speed overshoots as disconnect between the driver''s request and the engine response. This issue comes from the fact that a complete high fidelity mathematical model for the power-split HEV system along with the environmental effects cannot be accurately modeled inside the controller. Therefore, a controller adaptable to nonlinear behavior and not requiring detailed knowledge of mathematical model of the plant is required to address such issues. Fuzzy control approaches can provide a way to cope with the limitations of the conventional controllers. We have developed a fu-zzy control approach with minimal rules to intelligently control engine power and speed behavior in a powersplit HEV. This approach uses selective minimal rule-based fuzzy gain-scheduling to determine appropriate gains for the PI controller based on the system''s operating conditions. The improvements result in the reduction of the overshoots without compromising system''s response and settling times in comparison with the conventional linear PI controller. This paper describes the power-split hybrid vehicle''s powertrain system and key subsystems. It also describes minimal rule-based fuzzy gain-scheduling PI controller and the formulation of minimal fuzzy rules required to achieve the desired behavior. This minimal rule-based fuzzy controller was implemented in a Ford Escape hybrid vehicle and was evaluated in the vehicle test environment for a comparative analysis of the results to show its effectiveness. The results clearly demonstrate that the designed minimal rule based fuzzy gains scheduling controller is capable of significantly improving the engine speed and power behavior in a power-split HEV without compromising the system''s response and settling times
机译:环保意识使人们更加重视开发更环保,更省油的车辆。混合动力汽车(HEV)被认为是实现这些目标的可行选择。福特汽车公司开发了一种具有e-CVT(电控无级变速器)或带有集成电动机和发电机的动力分配混合动力总成的全混合动力电动汽车。动力分配混合动力系统使用行星齿轮组连接发动机,发电机和电动机。这种HEV动力总成具有巨大的潜力,可以使发动机在不依赖车速的最高效区域内运行,从而提高燃油经济性。为了提高动力分配混合动力系统的燃油经济性,高压(HV)电池电源管理至关重要。为了控制此类车辆中的实际HV电池功率,先进的控制系统必不可少,该系统可控制发动机功率,从而控制发动机转速,以实现所需的HV电池维护功率。传统方法使用比例积分(PI)控制系统来控制功率分配混合系统中的实际HV电池功率,由于功率的非线性,有时有时会导致发动机转速和功率超调或响应时间和建立时间降低拆分混合系统。这样的超调通常会受到客户的反对,他们认为发动机速度超调是驾驶员的要求与发动机响应之间的脱节。该问题源于以下事实:无法在控制器内部准确建模功率分配式混合动力汽车系统的完整高保真数学模型以及环境影响。因此,需要一种适用于非线性行为且不需要详细了解工厂数学模型的控制器来解决此类问题。模糊控制方法可以提供一种解决常规控制器局限性的方法。我们开发了一种模糊控制方法,该方法具有最少的规则,可以智能地控制动力分配式混合动力汽车中的发动机功率和速度行为。这种方法使用选择性的基于最小规则的模糊增益调度来根据系统的运行条件为PI控制器确定适当的增益。与传统的线性PI控制器相比,这些改进可减少过冲而不会影响系统的响应和建立时间。本文介绍了动力分配混合动力汽车的动力总成系统和关键子系统。它还描述了基于最小规则的模糊增益调度PI控制器,以及实现所需行为所需的最小模糊规则的制定。这种基于规则的最小模糊控制器在福特Escape混合动力汽车中实现,并在车辆测试环境中进行了评估,以比较结果以显示其有效性。结果清楚地表明,所设计的基于最小规则的模糊增益调度控制器能够在不损害系统响应和建立时间的情况下,显着提高动力分配式混合动力汽车的发动机速度和动力性能。

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