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http://hdl.handle.net/1942/48561| Title: | Photovoltaic to Virtual Bus Series-Parallel Differential Power Processing for Photovoltaic Systems | Authors: | Nazer, Afshin Isabella, Olindo Vahedi, Hani MANGANIELLO, Patrizio |
Issue Date: | 2026 | Publisher: | IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC | Source: | Ieee Open Journal of the Industrial Electronics Society, 7 , p. 279 -290 | Abstract: | Photovoltaic (PV) systems are frequently subject to voltage and current mismatches caused by various factors, such as partial shading, differing panel tilt angles, dust accumulation, and cell degradation among PV elements. These mismatches can significantly reduce the overall efficiency of PV systems by preventing individual modules or strings from operating at their maximum power point (MPP). This article introduces a novel architecture termed PV to virtual bus series-parallel differential power processing, which effectively mitigates mismatches in both series-connected PV modules (i.e., current mismatches) and parallel-connected PV strings (i.e., voltage mismatches). The proposed architecture employs a combination of string-level converters (SLCs) and module-integrated converters (MICs) that process only a fraction of the total power. Notably, the architecture leverages virtual buses on the primary side of both SLCs and MICs, leading to reduced voltage rating requirements for SLCs and lower power rating demands for MICs. This design reduces the stress on individual components, making the system more cost-effective and reliable. The article provides a comprehensive analysis of the requirements for SLCs and MICs, along with a detailed explanation of how the proposed architecture ensures that PV modules consistently operate at their respective MPPs. In addition, it explains how the virtual bus voltage is balanced through mathematical power flow equations, ensuring stable and efficient operation. Finally, the architecture's effectiveness is validated through real-time simulation results with two PLECS real-time (RT) boxes, which demonstrate its capability to address mismatch issues and optimize the performance of PV systems. | Notes: | Nazer, A (corresponding author), Delft Univ Technol, NL-2628 Delft, Netherlands. patrizio.manganiello@uhasselt.be |
Keywords: | Microwave integrated circuits; Voltage; Industrial electronics; Computer;architecture; Levelized cost of energy; Scalability; Photovoltaic;systems; Topology; Stress; Maximum power point trackers; Distributed;maximum power point tracking (DMPPT); module-integrated converters;(MICs); photovoltaic (PV) systems; photovoltatronics; PV to virtual bus;(PV2VB) differential power processing (DPP); series-parallel;differential power processing (SPDPP); string-level converters (SLCs) | Document URI: | http://hdl.handle.net/1942/48561 | e-ISSN: | 2644-1284 | DOI: | 10.1109/OJIES.2025.3643730 | ISI #: | 001673741500001 | Rights: | This work is licensed under a Creative Commons Attribution 4.0 License. For more information, see https://creativecommons.org/licenses/by/4.0/ | Category: | A1 | Type: | Journal Contribution |
| Appears in Collections: | Research publications |
Files in This Item:
| File | Description | Size | Format | |
|---|---|---|---|---|
| IEEE Xplore Full-Text PDF_.pdf | Published version | 3.64 MB | Adobe PDF | View/Open |
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