基于模块化多电平转换器的优化光伏并网控制系统的应用

Q2 Energy Energy Informatics Pub Date : 2024-04-09 DOI:10.1186/s42162-024-00317-3
Jun Xie
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引用次数: 0

摘要

光伏发电是一种前景广阔的发电方法,具有广泛的应用和发展潜力。它主要利用太阳能,具有可持续发展、绿色环保、太阳能资源丰富等特点。然而,有许多外部因素会影响光伏电池的输出特性和并网控制系统的有效性。本研究介绍了在光伏发电系统中引入模块化多电平转换器(MMC)技术,以提高发电效率。它提出通过调整照明的温度和幅度来优化和改进该技术,并结合传统算法提出了一种复合控制算法。光伏发电系统采用模块化多电平转换器技术,在优化和改进的同时提高发电效率。在采用传统算法的同时,对光的温度和大小进行调节,从而引入了复合控制算法。经过实验对比,改进后的复合算法超越了传统算法。对模型光伏并网发电系统的测试表明,将模块化多电平转换器技术与光伏并网发电系统相结合,结合复合比例积分控制算法和准比例谐振控制算法,可以获得更好的效果和可行性。具有合理性和有效控制。仿真结果表明,在 0.5 s 时,光照强度从 750 W/m2 突然增加到 1000 W/m2,直流电压在短时间内突然升高,但随后迅速降低,最后恢复到接近额定电压的稳定水平。由此可见,当光照强度持续变化时,该 MMC 并网光伏系统直流母线侧的电压值仍能保持在额定值附近,确保了整个系统的运行稳定性。合理有效的控制。在光伏发电系统中采用 MMC 技术可提高发电效率,同时支持光伏发电技术的进步,并为长期的环境保护做出贡献。
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Application of optimized photovoltaic grid-connected control system based on modular multilevel converters

Photovoltaic power generation is a promising method for generating electricity with a wide range of applications and development potential. It primarily utilizes solar energy and offers sustainable development, green environmental benefits, and abundant solar energy resources. However, there are many external factors that can affect the output characteristics of Photovoltaic cells and the effectiveness of the grid-connected control system. This study describes the introduction of Modular Multilevel Converter (MMC) technology into photovoltaic power generation systems to improve power generation efficiency. It proposes optimizing and improving the technology by adjusting the temperature and magnitude of lighting and combining traditional algorithms to propose a composite control algorithm. The photovoltaic power generation system employs the modular multi-level converter technology to enhance power generation efficiency alongside optimization and improvement. The temperature and size of light are regulated alongside the traditional algorithm to introduce the composite control algorithm. The improved composite algorithm surpasses the traditional one after experimental comparison of the results. The testing of a model photovoltaic power grid-connected system shows that the combination of modular multi-level converter technology and a photovoltaic grid-connected system, incorporating composite proportional integral control and quasi-proportional resonant control algorithms, yields improved results and feasibility. With rationality and effective control. The simulation results show that at 0.5 s, the light intensity suddenly increases from 750 to 1000 W/m2, and the direct-current voltage suddenly increases for a short time, but then decreases rapidly and finally returns to a stable level close to the rated voltage. From this, it can be seen that when the light intensity continues to change, the voltage value on the direct-current bus side of this MMC grid-tied photovoltaic system can still be maintained close to the rated value, ensuring the operational stability of the entire system. Sensibly and effectively controlled. The implementation of MMC technology in photovoltaic power generation systems enhances power generation efficiency, whilst simultaneously supporting the advancement of photovoltaic power generation and contributing towards environmental protection in the long term.

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来源期刊
Energy Informatics
Energy Informatics Computer Science-Computer Networks and Communications
CiteScore
5.50
自引率
0.00%
发文量
34
审稿时长
5 weeks
期刊最新文献
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