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Modeling and Control of the Power Conversion Unit in a Solid Oxide Fuel Cell Environment

机译:固体氧化物燃料电池环境中功率转换单元的建模与控制

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摘要

In this doctoral thesis, a power conversion unit for a 10 kWsolid oxide fuel cell is modeled, and a suitable control system is designed. The need for research was identified based on an observation that there was no information available about the characteristics of the solid oxide fuel cell from the perspective of power electronics and the control system, and suitable control methods had not previously been studied in the literature. In addition, because of the digital implementation of the control system, the inherent characteristics of the digital system had to be taken into account in the characteristics of the solid oxide fuel cell (SOFC). The characteristics of the solid oxide fuel cell as well the methods for the modeling and control of the DC/DC converter and the grid converter are studied by a literature survey. Based on the survey, the characteristics of the SOFC as an electrical power source are identified, and a solution to the interfacing of the SOFC in distributed generation is proposed. A mathematical model of the power conversion unit is provided, and the control design for the DC/DC converter and the grid converter is made based on the proposed interfacing solution. The limit cycling phenomenon is identified as a source of low-frequency current ripple, which is found to be insignificant when connected to a grid-tied converter. A method to mitigate a second harmonic originating from the grid interface is proposed, and practical considerations of the operation with the solid oxide fuel cell plant are presented. At the theoretical level, the thesis discusses and summarizes the methods to successfully derive a model for a DC/DC converter, a grid converter, and a power conversion unit. The results of this doctoral thesis can also be used in other applications, and the models and methods can be adopted to similar applications such as photovoltaic systems. When comparing the results with the objectives of the doctoral thesis, we may conclude that the objectives set for the work are met. In this doctoral thesis, theoretical and practical guidelines are presented for the successful control design to connect a SOFC-based distributed generation plant to the utility grid.
机译:在本博士论文中,对用于10 kW固体氧化物燃料电池的功率转换单元进行了建模,并设计了合适的控制系统。基于观察发现,从电力电子学和控制系统的角度来看,没有关于固体氧化物燃料电池特性的信息,并且以前没有在文献中研究过合适的控制方法,因此确定了研究的需要。另外,由于控制系统的数字实现,因此必须在固体氧化物燃料电池(SOFC)的特性中考虑数字系统的固有特性。通过文献调查研究了固体氧化物燃料电池的特性以及DC / DC转换器和电网转换器的建模和控制方法。在此基础上,确定了SOFC作为电源的特性,提出了分布式发电中SOFC接口的解决方案。提供了功率转换单元的数学模型,并基于所提出的接口解决方案进行了DC / DC转换器和电网转换器的控制设计。极限循环现象被认为是低频电流纹波的来源,当连接到并网转换器时,低频纹波是微不足道的。提出了一种减轻源自电网界面的二次谐波的方法,并提出了使用固体氧化物燃料电池工厂运行的实际考虑。在理论上,本文讨论并总结了成功推导DC / DC转换器,电网转换器和功率转换单元模型的方法。该博士论文的结果也可以用于其他应用,并且该模型和方法可以被用于类似的应用,例如光伏系统。将结果与博士学位论文的目标进行比较时,我们可以得出结论,即为工作设定的目标已得到满足。在本博士论文中,提出了成功的控制设计以将基于SOFC的分布式发电站连接到公用电网的理论和实践指南。

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    Riipinen Tomi;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en
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