TY - GEN
T1 - A Fast Method for Estimating Lower Voltage Bounds in Power Distribution Systems
AU - Cai, Yueming
AU - Liu, Xialing
AU - Zhang, Yingyuan
AU - Wang, Dayan
AU - Luo, Sipeng
AU - Zhao, Tianyang
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - Power flow analysis is essential for system operation and planning. As distribution networks expand with urbanization, electrification, and distributed resources, computational challenges increase. Traditional nonlinear methods face efficiency and convergence issues with large-scale, complex networks. Establishing voltage lower bounds before detailed calculations prevents wasteful computation on infeasible solutions, reduces resource consumption, defines operational boundaries, and improves decision-making. This paper proposes a method for rapid determination of voltage lower bounds in distribution systems through a unified hybrid AC/DC network modeling framework. The approach extends the LinDistFlow model and theoretically proves its voltage solutions consistently remain below Newton- Raphson solutions. Validation on modified IEEE test cases demonstrates that the proposed model provides strict lower bounds while significantly improving computational efficiency. This research offers a reliable voltage constraint assessment tool for distribution network planning and operation, with important implications for large-scale hybrid AC/DC systems.
AB - Power flow analysis is essential for system operation and planning. As distribution networks expand with urbanization, electrification, and distributed resources, computational challenges increase. Traditional nonlinear methods face efficiency and convergence issues with large-scale, complex networks. Establishing voltage lower bounds before detailed calculations prevents wasteful computation on infeasible solutions, reduces resource consumption, defines operational boundaries, and improves decision-making. This paper proposes a method for rapid determination of voltage lower bounds in distribution systems through a unified hybrid AC/DC network modeling framework. The approach extends the LinDistFlow model and theoretically proves its voltage solutions consistently remain below Newton- Raphson solutions. Validation on modified IEEE test cases demonstrates that the proposed model provides strict lower bounds while significantly improving computational efficiency. This research offers a reliable voltage constraint assessment tool for distribution network planning and operation, with important implications for large-scale hybrid AC/DC systems.
KW - distribution networks
KW - lindistflow
KW - power flow
KW - voltage boundaries
UR - https://www.scopus.com/pages/publications/105018051022
U2 - 10.1109/ICIEA65512.2025.11148925
DO - 10.1109/ICIEA65512.2025.11148925
M3 - 会议稿件
AN - SCOPUS:105018051022
T3 - 2025 IEEE 20th Conference on Industrial Electronics and Applications, ICIEA 2025
BT - 2025 IEEE 20th Conference on Industrial Electronics and Applications, ICIEA 2025
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 20th IEEE Conference on Industrial Electronics and Applications, ICIEA 2025
Y2 - 3 August 2025 through 6 August 2025
ER -