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Improved Controller Design for a Microgrid Fuel-Cell Based Energy Storage System

机译:基于微电网燃料电池的储能系统的改进控制器设计

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Energy storage systems are one of the essential components of a renewable energy based microgrid. However, for a fuel-cell based energy storage systems, the constraints imposed by the internal dynamics of a fuel-cell must be taken into account by its power interface converter system. In particular, a fuel-cell requires a constrained rate-of-change-of-current because of its slow dynamic capability. This introduces a slew rate nonlinearity between the primary and secondary feedback loops within a conventional cascaded control system, which can adversely impact the transient performance of a classical proportional integral (PI) controller. Hence such a controller cannot ensure safe operating conditions for a fuel cell, and may in fact damage it. This paper now investigates the design of an improved current regulated compensator for a fuel-cell energy storage system that takes the slew rate non linearity into account during microgrid load transients, while avoiding the need for more complex variable gain control system architectures. The resulting cascade control system for the fuel-cell dc-dc converter is implemented in the discrete time domain.
机译:能量存储系统是可再生能量基于微电网的基本组件之一。然而,对于基于燃料电池的能量存储系统,必须通过其电源接口转换器系统考虑由燃料电池的内部动态施加的约束。特别地,由于其动态能力慢,燃料电池需要受约束的电流率。这引入了传统级联控制系统内的主反馈环路和次级反馈环之间的转换速率非线性,这可能对经典比例积分(PI)控制器的瞬态性能产生不利影响。因此,这种控制器不能确保燃料电池的安全操作条件,并且实际上可能会损坏它。本文研究了用于燃料电池能量存储系统的改进的电流调节补偿器的设计,该燃料电池能量存储系统考虑了微电网负载瞬变,同时避免了对更复杂的可变增益控制系统架构的需求。用于燃料电池DC-DC转换器的所得到的级联控制系统在离散时域实现。

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