并联逆变器接口分布式能源控制

X. Yu, Zhenhua Jiang, Yu Zhang
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引用次数: 33

摘要

由于全球能源消费的快速增长和化石燃料的减少,客户对新一代发电能力和高效能源生产、输送和利用的需求不断上升。利用分布式发电、可再生能源和储能可以潜在地解决能源短缺和全球变暖等问题。将这些分布式能源连接起来的一个很有前途的结构是微电网范例。微电网包括各种逆变器接口的分布式能源,如燃料电池、光伏阵列、微型涡轮机、风力发电机、储能设备(即电池、超级电容器等)和可控负载,具有相当大的控制灵活性。这些系统可以与电网连接。它们也可以在干扰或故障的情况下与主电网隔离运行,由微电网中央控制器控制。关键是对并联逆变器进行控制,使其在微电网中发挥良好的性能。本文提出了一种新的并联逆变器接口分布式能源的功率共享控制方法。在四种典型场景下对所提出的控制方法进行了测试:(1)三个逆变器从并网模式切换到隔离模式;(1)三台逆变器由隔离模式切换为并网模式;(3)三逆变器运行切换为两逆变器运行隔离模式;(4)两台逆变器运行切换为三台逆变器隔离运行。仿真结果表明,该控制方法可以使并联逆变器工作良好,提高微电网的稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control of Parallel Inverter-Interfaced Distributed Energy Resources
Due to the rapid increase in global energy consumption and the diminishing of fossil fuels, the customer demand for new generation capacities and efficient energy production, delivery and utilization keeps rising. Utilizing distributed generation, renewable energy and energy storage can potentially solve such problems as energy shortage and global warming. A promising structure to interconnect these distributed energy resources is the microgrid paradigm. A microgrid comprises a variety of inverter-interfaced distributed energy resources such as fuel cells, photovoltaic arrays, microturbines, wind-turbine generators, energy storage devices (i.e., batteries, supercapacitors, etc.) and controllable loads, offering considerable control flexibility. These systems can be connected with the power grid. They can be also operated isolated from the main grid in case of disturbances or faults, which are controlled by the microgrid central controller. The key point is to control the parallel inverters so that they can work well to achieve high performances in the microgrid. This paper presents a new control method for power sharing among the parallel inverter-interfaced distributed energy resources. The proposed control method is tested in four typical scenarios: (1) three inverters switch from grid-connected mode to isolated mode; (1) three inverters switch from isolated mode to grid-connected mode; (3) three-inverter operation switched to two inverter operation in the isolated mode; and (4) two inverter operation switches to three inverter operation in the isolated mode. Simulation results suggest that this control method can make the parallel-connected inverters work well and will increase the microgrid stability.
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