研究生: |
王俊閔 Wang, Jun-Min |
---|---|
論文名稱: |
以併網型電力轉換器實現微電網之虛擬慣量控制器 Virtual inertia controller for microgrids based on grid connected power converter |
指導教授: |
朱家齊
Chu, Chia-Chi |
口試委員: |
洪穎怡
Hong, Ying-Yi 吳有基 Wu, Yu-Chi 連國龍 Lian, Kuo-Lung |
學位類別: |
碩士 Master |
系所名稱: |
電機資訊學院 - 電機工程學系 Department of Electrical Engineering |
論文出版年: | 2020 |
畢業學年度: | 108 |
語文別: | 中文 |
論文頁數: | 87 |
中文關鍵詞: | 虛擬慣量 、頻率調節 、再生能源 、轉換器 、虛擬同步發電機 、內外雙迴圈之解耦閉迴路控制 、負載頻率控制 |
外文關鍵詞: | Virtual inertia, frequency regulation, virtual synchronous generator, dual decouple control loop |
相關次數: | 點閱:2 下載:0 |
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近幾年再生能源在整個電力系統中佔據了很大一部分,例如太陽能和風力發電,越來越多用於滿足全球不斷增長的能源需求。然而,再生能源通常通過快速響應轉換器耦合到電網而沒有任何慣量,從而導致電力系統慣量降低。在嚴重的頻率事件下,電網頻率很容易超出可接受的範圍,從而導致不希望的負載跳脫,甚至大規模停電。為了解決不斷減小的慣量問題,本文提出了分佈式電源系統虛擬慣量的概念,利用電容器與發電機相似的特性產生出虛擬慣量。而傳統的虛擬慣量控制,能夠將頻率最低點和頻率變化率提高至20%和50%,本文將透過修改其虛擬慣量控制器,使其達頻率最低點達到30%。
本文透過連接其直流側電壓與頻率,產生分佈式電源系統虛擬慣量,為系統增加慣量。將在傳統控制方法當中加入二階低通濾波器,改善系統的頻率最低點,並且利用波德圖分析其結果,加以改善頻率最低點的問題。本實驗先以Simulink模擬程式建立起系統,並且使用Opal-RT進行即時模擬,並且利用DSP以及兩台轉換器實現硬體,相互驗證。
In recent years, renewable energy source take a large portion in power system all over the world.For example, wind and solar photovoltaic power generation are increasingly used to satisfy with worldwide growing energy demand.However, renewable energy is usually coupled to the power grid through a converter without any inertia, which leads to the reduction of power system inertia. The grid frequency may easily go beyond the acceptable range under severe frequency events, resulting in undesirable load-shedding, or even large-scale blackouts. To address the ever-decreasing inertia issue, this thesis proposes the concept of distributed power system virtual inertia.The traditional virtual inertia control which indicate that 20% and 50% improvements of the frequency nadir and rate of change of frequency can be achieved. In this thesis, the virtual inertia controller will be modified to improve the frequency nadir about 30%.
In this thesis, the virtual inertia of distributed power system is generated by connecting the voltage and frequency. A second-order low-pass filter is added to the traditional control method to improve the frequency nadir, and the Bode diagram is used to analyze to improve the frequency nadir. Simulink is used to build the model, and opal RT is used for real-time simulation.Two DSP-based converters are used to demonstrate the feasibility of the proposed method.
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