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Adaptive Second Order Sliding Mode Control of a Fuel Cell Hybrid System for Electric Vehicle Applications

机译:电动车辆应用燃料电池混合系统的自适应二阶滑动模式控制

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摘要

We present an adaptive-gain second order sliding mode (SOSM) control applied to a hybrid power system for electric vehicle applications. The main advantage of the adaptive SOSM is that it does not require the upper bound of the uncertainty. The proposed hybrid system consists of a polymer electrolyte membrane fuel cell (PEMFC) with a unidirectional DC/DC converter and a Li-ion battery stack with a bidirectional DC/DC converter, where the PEMFC is employed as the primary energy source and the battery is employed as the second energy source. One of the main limitations of the FC is its slow dynamics mainly due to the air-feed system and fuel-delivery system. Fuel starvation phenomenon will occur during fast load demand. Therefore, the second energy source is required to assist the main source to improve system perofrmance. The proposed energy management system contains two cascade control structures, which are used to regulate the fuel cell and battery currents to track the given reference currents and stabilize the DC bus voltage while satisfying the physical limitations. The proposed control strategy is evaluated for two real driving cycles, that is, Urban Dynamometer Driving Schedule (UDDS) and Highway Fuel Economy Driving Schedule (HWFET).
机译:我们提出了一种适用于用于电动车辆应用的混合动力系统的自适应增益二阶滑动模式(SOSM)控制。适应性SOSM的主要优点是它不需要不确定度的上限。所提出的混合系统由具有单向DC / DC转换器的聚合物电解质膜燃料电池(PEMFC)和具有双向DC / DC转换器的Li离子电池堆栈组成,其中PEMFC用作主要能量源和电池被用作第二能源。 FC的主要局限之一是其慢动力学主要是由于空气供给系统和燃料输送系统。在快速负载需求期间将发生燃料饥饿现象。因此,需要第二能源来帮助主要来源改善系统杂散。所提出的能量管理系统包含两个级联控制结构,用于调节燃料电池和电池电流以跟踪给定的参考电流并稳定直流母线电压,同时满足物理限制。拟议的控制策略是评估两个实际驾驶循环,即城市测力计驾驶时间表(UDD)和公路燃料经济性驾驶时间表(HWFET)。

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