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研究生: 楊浩
Hao Yang
論文名稱: 應用MOPSO與Pareto Fronts之配電網電壓控制閾值最佳參數調校
Optimal Parameter Tuning for Voltage Control Thresholds in Distribution Networks using MOPSO and Pareto Fronts
指導教授: 楊念哲
Nien-Che Yang
口試委員: 謝廷彥
Ting-Yen Hsieh
張建國
Chien-Kuo Chang
曾威智
Wei-Chih Tseng
學位類別: 碩士
Master
系所名稱: 電資學院 - 電機工程系
Department of Electrical Engineering
論文出版年: 2023
畢業學年度: 111
語文別: 中文
論文頁數: 49
中文關鍵詞: 有載分接頭切換器切換式電容器智慧變流器電壓-無效功率控制多目標粒子群演算法柏拉圖前緣配電系統電壓控制
外文關鍵詞: on-load tap changer, switched capacitor, smart inverter, voltage-reactive power control, multi-objective particle swarm optimization, Patrto fronts, distribution system voltage control
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  • 本論文提出了一種基於多目標優化演算法的方法,以改進分散式發電的電壓控制策略。該方法考慮到實際負載的每日變化,涉及設定變壓器有載分接頭切換器、切換式電容器和智慧型變流器之電壓-無效功率控制的閾值。使用多目標粒子群優化演算法與柏拉圖前緣優化目標函數,包括電壓偏差、系統功耗損失以及變壓器有載分接頭切換器和切換式電容器的變動次數,通過最小化這些目標函數,可以獲得一組最佳控制點。最後在IEEE 33-bus測試系統對多種負載模式的操作情景進行模擬,以驗證所提方法的有效性。模擬結果顯示,所提出的方法有效地優化了電壓控制問題,從而提高了配電系統的電壓穩定性和可靠性。


    This thesis proposes a method based on a multi-objective optimization algorithm for enhancing the voltage control strategy for distributed generation by considering the daily variations of actual loads. The proposed method involves setting the voltage control thresholds of the on-load tap changer, switched capacitor, and voltage–reactive power control of smart inverters. A multi-objective particle swarm optimization algorithm is used with Pareto fronts to optimize the objective functions, which include voltage deviation,system power losses, and the number of changes in the on-load tap changer and switched capacitor. By minimizing these objective functions, a set of optimal control setpoints can be obtained. Several operating scenarios with varying
    daily load patterns were simulated using the IEEE 33-bus test system to validate the effectiveness of the proposed methodology. The simulation results showed that the proposed approach effectively optimizes the voltage control problem, thereby improving the voltage stability and reliability of a distribution system.

    摘要 I Abstract II 致謝 III 目錄 IV 圖目錄 VI 表目錄 VIII 第一章 緒論 1 1.1 研究背景與動機 1 1.2 文獻方法 2 1.3 論文架構 2 第二章 電路元件之原理 4 2.1 前言 4 2.2 有載分接頭切換器 4 2.3 切換式電容器 5 2.4 分散式發電和負載 6 2.5 曼哈頓距離 13 第三章 常見饋線電壓控制方法 8 3.1 前言 8 3.2 OLTC與SC的電壓控制法 8 3.3 電壓九區圖控制法 11 3.4 智慧變流器之Volt-VAR控制法 13 第四章 所研提優化策略 15 4.1 前言 15 4.2 目標函數 15 4.3 限制條件 17 4.4 柏拉圖最佳化 20 4.5 多目標粒子群演算法 21 4.6 最小曼哈頓距離 24 第五章 測試結果 26 5.1 前言 26 5.2 測試系統 26 5.3 案例分析 27 5.3.1 可行性評估 27 5.3.2 有效性驗證 29 5.3.3 電壓控制閾值比較 30 5.3.4 負載隨機變動 31 第六章 結論與未來研究方向 34 6.1 結論 34 6.2 未來研究方向 34 參考文獻 36

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