Finite control set model predictive control of three-port converter for interfacing a PV-battery energy storage system to a three-phase stand-alone AC system
| dc.contributor.author | Preeti, G.A. | |
| dc.contributor.author | Karthikeyan, A. | |
| dc.date.accessioned | 2026-02-04T12:25:02Z | |
| dc.date.issued | 2024 | |
| dc.description.abstract | This paper proposes a multiport bidirectional non-isolated converter topology that provides advantages in terms of simultaneous multiple operations, single-stage conversion, high power density and reduced power losses due to the lower number of switches. The proposed multiport converter uses a centralized non-linear controller known as a finite control set model predictive controller to manage the flow of power between different ports. It deals with the parallel operation of photovoltaic and battery energy storage systems for stand-alone alternating current (AC) systems. The converter connects the lower voltage battery to the photovoltaic port using a bidirectional buck/boost converter and the photovoltaic port is linked to the stand-alone AC load through a three-phase full-bridge inverter. Each leg of the three-phase converter will act as a bidirectional direct current (DC)/DC converter as well as an inverter simultaneously. Only six switches manage the power transfer between all the connected ports of photovoltaic-battery energy storage system linked to the stand-alone AC load. The proposed multiport converter is mathematically modelled and controlled by a finite control set model predictive controller. The system is validated in simulation (1-kW rating) and experimental environment (200-W rating). The hardware prototype is developed in the laboratory and the controller is implemented on the field-programmable gate array board. Two independent case studies are carried out to validate the efficacy of the system. The first scenario is for a change in solar irradiance, while the second scenario is for a change in the output load. © The Author(s) 2024. Published by Oxford University Press on behalf of National Institute of Clean-and-Low-Carbon Energy. | |
| dc.identifier.citation | Clean Energy, 2024, 8, 2, pp. 73-84 | |
| dc.identifier.issn | 25154230 | |
| dc.identifier.uri | https://doi.org/10.1093/ce/zkae006 | |
| dc.identifier.uri | https://idr.nitk.ac.in/handle/123456789/21199 | |
| dc.publisher | Oxford University Press | |
| dc.subject | Battery storage | |
| dc.subject | Boost converter | |
| dc.subject | Controllers | |
| dc.subject | Electric batteries | |
| dc.subject | Electric impedance measurement | |
| dc.subject | Electric inverters | |
| dc.subject | Energy transfer | |
| dc.subject | Field programmable gate arrays (FPGA) | |
| dc.subject | Linear control systems | |
| dc.subject | Alternating current | |
| dc.subject | Current-converter | |
| dc.subject | Direct current converter | |
| dc.subject | Direct current/alternating current converter | |
| dc.subject | Direct current/direct current converter | |
| dc.subject | Direct-current | |
| dc.subject | Finite control set | |
| dc.subject | Finite control set model predictive controller | |
| dc.subject | Model predictive controllers | |
| dc.subject | Multi-port | |
| dc.subject | Multiport converter | |
| dc.subject | PV-BESS | |
| dc.subject | Set models | |
| dc.subject | Three-phase converter | |
| dc.subject | Model predictive control | |
| dc.title | Finite control set model predictive control of three-port converter for interfacing a PV-battery energy storage system to a three-phase stand-alone AC system |
