A New Decentralized Control Strategy of Microgrids in the Internet of Energy Paradigm
Abstract
:1. Introduction
1.1. Related Works
1.2. Paper Contribution
- Firstly, the researchers investigated the MAS-controlled MGs in the Energy Internet, which has not been reported in the past.
- Secondly, the researchers proposed a distributed secondary control of the MGs, which enabled the group plug-and-play feature after considering all interactions between and amongst the multiple MASs, which were differently owned.
- Thirdly, they implemented a framework for the proposed control technique using MAS and cloud servers.
- Furthermore, we proposed an IoT-based communication protocol, which included specifications like MQTT. This improves system flexibility. The proposed system offered analytics and business intelligence (BI), which allowed the researchers to gain insights on the data collected by visualizing dashboards and reports. Additionally, the use of big data-based data storage technologies enabled the system’s scalability at the national level. This provided energy-efficiency strategies for the household owners and the utility companies.
- We implemented a hierarchical two-layered communication architecture based on the MQTT protocol and using the cloud-based server called ThingSpeak. This helped customers realize the global and local communications necessary for the neighborhood appliance controllers.
2. Proposed System Description
- ThingSpeak Cloud IoT platform data aggregation, tracking and analysis. In the smart grid model, the power profile is monitored on multiple ThingSpeak channels in real-time and depicted graphically.
- Security: The Username and password allow user authentication while each channel is equipped with its ID and accessible (see by other users). There are two keys in each channel for the application programming interface. A randomly generated read key and write key of the API. These keys can save or retrieve information from stuff from each channel over the Internet or LAN.
- It facilitates the double-way flow of data between the user and virtual device and allows data and remote control to be exchanged in real-time. The MATLAB Desktop Toolbox offers communication between the simulated feeding model and the ThingSpeak IoT platform.
- Communication network enabling for the data transmission over the Internet between MATLAB and ThingSpeak.
- Allows importing, exporting, analyzing and viewing data on multiple platforms and their fields simultaneously.
3. Proposed Hierarchical Control
3.1. Problem Formulation
3.2. Primary Control of Inverter-Based Distributed Generators
3.3. MASs Communication
3.4. Proposed Secondary Distributed Controller
4. Proposed Internet of Energy Communication Platform
4.1. MQTT Knowledge
4.2. Architecture of Proposed System
5. Result analysis and Discussion Proposed Method
5.1. Scenario I
5.2. Scenario II
5.3. Scenario III
5.4. Scenario IV
6. Access to Internet Web Page
6.1. Scenario I
6.2. Scenario II
6.3. Scenario III
6.4. Scenario IV
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Parameter | Symbols | Values |
---|---|---|
Filter inductance | ||
Filter resistance | 0.1, 0.05 Ω | |
Filter capacitance | 47 µF | |
Voltage Controller | 0.1 | |
420 | ||
Current Controller | 15 | |
200,000 | ||
Impedance | ||
Line impedance | ||
Base voltage | 220 V | |
Input DC voltage | 400 V | |
Microgrid frequency | 60 Hz | |
Load 1 | Home 1 | 300 W |
Load 2 | Home 2 | 350 W |
Load 3 | Home 3 | 400 W |
Load 4 | Home 4 | 450 W |
Load 5 | Home 5 | 425 W |
Load 6 | Home 6 | 375 W |
Load 7 | Home 7 | 325 W |
Load 8 | Home 8 | 275 W |
Time | Home 1 | Home 2 | Home 3 | Home 4 | Home 5 | Home 6 | Home 7 | Home 8 |
---|---|---|---|---|---|---|---|---|
1 h | OFF | OFF | OFF | OFF | OFF | OFF | OFF | OFF |
2 h | OFF | OFF | OFF | OFF | OFF | OFF | OFF | OFF |
3 h | ON | OFF | OFF | OFF | ON | OFF | OFF | OFF |
4 h | ON | OFF | OFF | OFF | ON | OFF | OFF | OFF |
5 h | ON | OFF | OFF | OFF | ON | OFF | OFF | OFF |
6 h | ON | ON | OFF | OFF | ON | OFF | OFF | ON |
7 h | ON | ON | OFF | OFF | ON | OFF | OFF | ON |
8 h | ON | ON | OFF | OFF | ON | OFF | OFF | ON |
9 h | ON | ON | ON | OFF | ON | ON | OFF | ON |
10 h | ON | ON | ON | OFF | ON | ON | OFF | ON |
11 h | ON | ON | ON | OFF | ON | ON | OFF | ON |
12 h | ON | ON | ON | ON | ON | ON | ON | ON |
13 h | ON | ON | ON | ON | ON | ON | ON | ON |
14 h | ON | ON | ON | ON | ON | ON | ON | ON |
15 h | OFF | ON | ON | ON | OFF | ON | ON | ON |
16 h | OFF | ON | ON | ON | OFF | ON | ON | ON |
17 h | OFF | ON | ON | ON | OFF | ON | ON | ON |
18 h | OFF | OFF | ON | ON | OFF | ON | ON | OFF |
19 h | OFF | OFF | ON | ON | OFF | ON | ON | OFF |
20 h | OFF | OFF | ON | ON | OFF | ON | ON | OFF |
21 h | OFF | OFF | OFF | ON | OFF | OFF | ON | OFF |
22 h | OFF | OFF | OFF | ON | OFF | OFF | ON | OFF |
23 h | OFF | OFF | OFF | ON | OFF | OFF | ON | OFF |
24 h | OFF | OFF | OFF | ON | OFF | OFF | ON | OFF |
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Alhasnawi, B.N.; Jasim, B.H.; Sedhom, B.E.; Hossain, E.; Guerrero, J.M. A New Decentralized Control Strategy of Microgrids in the Internet of Energy Paradigm. Energies 2021, 14, 2183. https://doi.org/10.3390/en14082183
Alhasnawi BN, Jasim BH, Sedhom BE, Hossain E, Guerrero JM. A New Decentralized Control Strategy of Microgrids in the Internet of Energy Paradigm. Energies. 2021; 14(8):2183. https://doi.org/10.3390/en14082183
Chicago/Turabian StyleAlhasnawi, Bilal Naji, Basil H. Jasim, Bishoy E. Sedhom, Eklas Hossain, and Josep M. Guerrero. 2021. "A New Decentralized Control Strategy of Microgrids in the Internet of Energy Paradigm" Energies 14, no. 8: 2183. https://doi.org/10.3390/en14082183
APA StyleAlhasnawi, B. N., Jasim, B. H., Sedhom, B. E., Hossain, E., & Guerrero, J. M. (2021). A New Decentralized Control Strategy of Microgrids in the Internet of Energy Paradigm. Energies, 14(8), 2183. https://doi.org/10.3390/en14082183