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A Resilience-Oriented Bidirectional ANFIS Framework for Networked Microgrid Management

delete2022-12-16
delete6
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OA
AI
M
Muhammad Zeshan Afzal
M
Muhammad Aurangzeb
S
Sheeraz Iqbal
A
Atiq Ur Rehman
H
Hossam Kotb
K
Kareem M. AboRas
E
Elmazeg Elgamli *
M
Mokhtar Shouran
DOI:10.3390/pr10122724delete
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摘要

摘要

En 中文
This study implemented a bidirectional artificial neuro-fuzzy inference system (ANFIS) to solve the problem of system resilience in synchronized and islanded grid mode/operation (during normal operation and in the event of a catastrophic disaster, respectively). Included in this setup are photovoltaics, wind turbines, batteries, and smart load management. Solar panels, wind turbines, and battery-charging supercapacitors are just a few of the sustainable energy sources ANFIS coordinates. The first step in the process was the development of a mode-specific control algorithm to address the system's current behavior. Relative ANFIS will take over to greatly boost resilience during times of crisis, power savings, and routine operations. A bidirectional converter connects the battery in order to keep the DC link stable and allow energy displacement due to changes in generation and consumption. When combined with the ANFIS algorithm, PV can be used to meet precise power needs. This means it can safeguard the battery from extreme conditions such as overcharging or discharging. The wind system is optimized for an island environment and will perform as designed. The efficiency of the system and the life of the batteries both improve. Improvements to the inverter's functionality can be attributed to the use of synchronous reference frame transformation for control. Based on the available solar power, wind power, and system state of charge (SOC), the anticipated fuzzy rule-based ANFIS will take over. Furthermore, the synchronized grid was compared to ANFIS. The study uses MATLAB/Simulink to demonstrate the robustness of the system under test.
Keyword:
microgrid
bidirectional ANFIS
adaptive neural network
resilience
fuzzy
energy storage

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IF:
2.8
论文数:
7.3K
被引数:
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机构

E
egyptian knowledge bank (ekb)
学者数:
11.6W
论文数: 9.3W
被引数: 84
N
north china electric power university
学者数:
2.5W
论文数: 1.7W
被引数: 16
C
Cardiff University
学者数:
2.7W
论文数: 2.5W
被引数: 3.5W
S
southeast university - china
学者数:
5.3W
论文数: 4.9W
被引数: 57
A
Alexandria University
学者数:
6.6K
论文数: 5.5K
被引数: 9.5K
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