摘要
This paper aims to implement a cloud-based monitoring DC microgrid system suitable for communities by integrating a simulated utility grid system (SUGS), battery energy storage system (BESS), solar power generation system (SPGS), and cloud-based front-end monitoring interface and technology. Additionally, the paper utilizes Long Short-Term Memory (LSTM) model to predict the next day's load curve and employs a solar simulator to simulate the daily variations in solar irradiance. Furthermore, to enhance economic benefits during peak and off-peak time-of-use (TOU) pricing periods, this paper adopts the concept of local selection using a greedy algorithm to optimize energy allocation between SUGS, BESS, and SPGS through cloud computing. Finally, a derating case study is conducted through simulations and experiments to verify the economic value and feasibility of the proposed greedy algorithm in a community-based DC microgrid.
| 原文 | 英語 |
|---|---|
| 主出版物標題 | 2024 IEEE 9th Southern Power Electronics Conference, SPEC 2024 |
| 發行者 | Institute of Electrical and Electronics Engineers Inc. |
| 版本 | 2024 |
| ISBN(電子) | 9798350351156 |
| DOIs | |
| 出版狀態 | 已發佈 - 2024 |
| 事件 | 9th IEEE Southern Power Electronics Conference, SPEC 2024 - Brisbane, 澳大利亚 持續時間: 2024 12月 2 → 2024 12月 5 |
會議
| 會議 | 9th IEEE Southern Power Electronics Conference, SPEC 2024 |
|---|---|
| 國家/地區 | 澳大利亚 |
| 城市 | Brisbane |
| 期間 | 2024/12/02 → 2024/12/05 |
ASJC Scopus subject areas
- 能源工程與電力技術
- 電氣與電子工程
- 機械工業
- 控制和優化
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