TY - GEN
T1 - Steady-State Analysis of the Constant Power Region in Distributed Maximum Power Point Tracking Architecture with Photovoltaic Applications
AU - Chu, Guanying
AU - Bu, Qinglei
AU - Yang, Meilin
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - This study analyzes the steady-state characteristics of distributed maximum power point tracking (DMPPT) architecture in photovoltaic systems, focusing on full power processing (FPP) with series-connected direct current power optimizers (DCPOs). The decentralization approach of the FPP structure utilizes the independent DCPO for each PV module to solve mismatch issues. However, each PV-to-DCPO unit is not truly independent, and it is necessary to connect the output terminals of DCPO in series or parallel to meet the grid-connected voltage of the string-level inverter. The research examines the constant power region (CPR) of DCPO outputs and string-level performance under various mismatch conditions for boost and buck converter topologies. Considering practical constraints like duty cycle limitations, the study reveals that the existence and optimal string-level CPR width depend on environmental conditions and converter type. Severe mismatches can eliminate the optimal CPR in boost-based systems, while buck-based DCPOs generally maintain a positive CPR width, though extreme shading can significantly impact performance. These findings provide crucial insights into FPP-based DMPPT architecture limitations and emphasize the importance of considering real-world constraints in system design and evaluation.
AB - This study analyzes the steady-state characteristics of distributed maximum power point tracking (DMPPT) architecture in photovoltaic systems, focusing on full power processing (FPP) with series-connected direct current power optimizers (DCPOs). The decentralization approach of the FPP structure utilizes the independent DCPO for each PV module to solve mismatch issues. However, each PV-to-DCPO unit is not truly independent, and it is necessary to connect the output terminals of DCPO in series or parallel to meet the grid-connected voltage of the string-level inverter. The research examines the constant power region (CPR) of DCPO outputs and string-level performance under various mismatch conditions for boost and buck converter topologies. Considering practical constraints like duty cycle limitations, the study reveals that the existence and optimal string-level CPR width depend on environmental conditions and converter type. Severe mismatches can eliminate the optimal CPR in boost-based systems, while buck-based DCPOs generally maintain a positive CPR width, though extreme shading can significantly impact performance. These findings provide crucial insights into FPP-based DMPPT architecture limitations and emphasize the importance of considering real-world constraints in system design and evaluation.
KW - and mismatch
KW - direct current power optimizer (DCPO)
KW - distributed maximum power point tracking (DMPPT)
KW - full power processing (FPP)
UR - http://www.scopus.com/inward/record.url?scp=86000463681&partnerID=8YFLogxK
U2 - 10.1109/ECCE55643.2024.10861337
DO - 10.1109/ECCE55643.2024.10861337
M3 - Conference Proceeding
AN - SCOPUS:86000463681
T3 - 2024 IEEE Energy Conversion Congress and Exposition, ECCE 2024 - Proceedings
SP - 475
EP - 481
BT - 2024 IEEE Energy Conversion Congress and Exposition, ECCE 2024 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2024 IEEE Energy Conversion Congress and Exposition, ECCE 2024
Y2 - 20 October 2024 through 24 October 2024
ER -