基于数字信号控制器(TMS320F28335)的分布式发电源智能电网仿真器建模与分析

Xavier Raj.I Andrew, M. Anand, P. Sivakumar
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引用次数: 6

摘要

现代技术已经为输电和配电系统带来了一系列前瞻性的改进。配电网络必须仔细控制,以保持可接受的供电质量。为了满足不同自然条件下的持续负荷需求,需要将不同的可再生能源相互整合。介绍了一种由太阳能电池、燃料电池和风力发电系统组成的可再生能源混合发电系统的动态建模和仿真结果。对该隔离系统各部件进行了动态建模。研究了系统对负荷、环境温度、辐射和风速等阶跃变化的瞬态响应。结果表明,所提出的混合电力系统能够承受自然条件的快速变化,并将这些波动对电压的影响抑制在可接受的范围内。我们设计了一种灵活的dsp控制三相电力电子转换器,用于将分布式发电集成到网络中。可再生能源能源转换的进一步增加要求在传统的集中电网控制中占有份额。这就需要一个快速灵活的控制系统。利用DSC的嵌入式模型细节实现控制。介绍了系统的结构、使用dsp系统引起的特殊问题以及逆变器控制的实现。利用Simulink对模型进行了开发。
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Modelling and analysis of emulator for distributed generation sourced smart grid using digital signal controller (TMS320F28335)
Modern technology has given rise to a slew of forward looking enhancements for systems that transmit and distribute electricity. Distribution networks must be carefully controlled in order to maintain an acceptable power supply quality. In order to meet sustained load demands during varying natural conditions, different renewable energy sources need to be integrated with each other. This paper describes dynamic modeling and simulation results of a renewable energy based hybrid power system on the combination of solar cell ,fuel cell and wind turbine systems for power generation. Dynamic modeling of various components of this isolated system is presented. Transient responses of the system to step changes in the load, ambient temperature, radiation, and wind speed in a number of possible situations are studied. The results show that the proposed hybrid power system can tolerate the rapid changes in natural conditions and suppress the effects of these fluctuations on the voltage within the acceptable range. We designed a flexible DSP-controlled three-phase power electronic converter for the integration of distributed energy generation into networks. The further increase of energy conversion from renewable energy sources demands a share of the conventional centralized grid control. This requires a fast and flexible control system. The control is realized with embedded model details of DSC. The system structure, the special problems resulting from the use of a DSP-system and the implementation of the inverter control are described. The models have been developed by means of Simulink.
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