Title data
Kamal, Tariq ; Karabacak, Murat ; Perić, Vedran S. ; Hassan, Syed Zulqadar ; Fernández-Ramírez, Luis M.:
Novel improved adaptive neuro-fuzzy control of inverter and supervisory energy management system of a microgrid.
In: Energies.
Vol. 13
(2020)
Issue 18
.
- 4721.
ISSN 1996-1073
DOI: https://doi.org/10.3390/en13184721
Project information
| Project title: |
Project's official title Project's id Flexibel konfigurierbares Microgrid-Labor 350746631 |
|---|---|
| Project financing: |
Deutsche Forschungsgemeinschaft |
Abstract in another language
In this paper, energy management and control of a microgrid is developed through supervisor and adaptive neuro-fuzzy wavelet-based control controllers considering real weather patterns and load variations. The supervisory control is applied to the entire microgrid using lower–top level arrangements. The top-level generates the control signals considering the weather data patterns and load conditions, while the lower level controls the energy sources and power converters. The adaptive neuro-fuzzy wavelet-based controller is applied to the inverter. The new proposed wavelet-based controller improves the operation of the proposed microgrid as a result of the excellent localized characteristics of the wavelets. Simulations and comparison with other existing intelligent controllers, such as neuro-fuzzy controllers and fuzzy logic controllers, and classical PID controllers are used to present the improvements of the microgrid in terms of the power transfer, inverter output efficiency, load voltage frequency, and dynamic response.
Further data
| Item Type: | Article in a journal |
|---|---|
| Refereed: | Yes |
| Keywords: | inverter; supervisory control; adaptive control; photovoltaic; ultra-capacitor; battery; wavelets; energy management |
| Institutions of the University: | Faculties > Faculty of Engineering Science > Chair Intelligent Energy Management > Chair Intelligent Energy Management - Univ.-Prof. Dr. Vedran Peric |
| Result of work at the UBT: | No |
| DDC Subjects: | 600 Technology, medicine, applied sciences > 620 Engineering |
| Date Deposited: | 25 Mar 2026 12:13 |
| Last Modified: | 25 Mar 2026 12:13 |
| URI: | https://eref.uni-bayreuth.de/id/eprint/96117 |

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