TY - JOUR
T1 - Communication-Efficient Distributed Pricing for Power-Hydrogen Systems With Electric Vehicles and Renewable Energy Integration
AU - Li, Xiangyu
AU - Chen, Guo
AU - Li, Chaojie
AU - Xu, Zhao
AU - Luo, Fengji
AU - Dong, Zhao Yang
N1 - Publisher Copyright:
© 2010-2012 IEEE.
PY - 2025/1
Y1 - 2025/1
N2 - Integrated power-hydrogen systems can efficiently harness renewable energy sources to replace traditional fossil fuels and promote the development of sustainable transport. However, the complex interplay among power, hydrogen, and transportation introduces challenges in effectively integrating the grid and the transportation system. To address this, an integrated power-hydrogen management and transaction scheme is proposed for battery electric vehicle charging and fuel cell electric vehicle hydrogen refueling. Then, a data-driven distributionally robust chance-constrained model is developed to jointly optimize power-hydrogen management and transaction strategies, as well as traffic flow assignment. It can mitigate the supply shortfall risk related to volatile renewable generation by utilizing limited observed samples. The centralized optimization problem is decomposed into subproblems for the integrated power-hydrogen system and the transportation system and solved iteratively through a communication-efficient distributed pricing method. This method incorporates a communication censoring strategy and an adaptive penalty parameter technique to reduce communication costs and enhance convergence. Case studies demonstrate that the proposed scheme effectively reduces the total system cost. Furthermore, the proposed method efficiently coordinates the power-hydrogen supply and demand with lower communication costs.
AB - Integrated power-hydrogen systems can efficiently harness renewable energy sources to replace traditional fossil fuels and promote the development of sustainable transport. However, the complex interplay among power, hydrogen, and transportation introduces challenges in effectively integrating the grid and the transportation system. To address this, an integrated power-hydrogen management and transaction scheme is proposed for battery electric vehicle charging and fuel cell electric vehicle hydrogen refueling. Then, a data-driven distributionally robust chance-constrained model is developed to jointly optimize power-hydrogen management and transaction strategies, as well as traffic flow assignment. It can mitigate the supply shortfall risk related to volatile renewable generation by utilizing limited observed samples. The centralized optimization problem is decomposed into subproblems for the integrated power-hydrogen system and the transportation system and solved iteratively through a communication-efficient distributed pricing method. This method incorporates a communication censoring strategy and an adaptive penalty parameter technique to reduce communication costs and enhance convergence. Case studies demonstrate that the proposed scheme effectively reduces the total system cost. Furthermore, the proposed method efficiently coordinates the power-hydrogen supply and demand with lower communication costs.
KW - distributed pricing
KW - Electric vehicle
KW - integrated power-hydrogen system
KW - renewable energy source
KW - risk-averse
UR - https://www.scopus.com/pages/publications/85197521918
U2 - 10.1109/TSG.2024.3413755
DO - 10.1109/TSG.2024.3413755
M3 - Journal article
AN - SCOPUS:85197521918
SN - 1949-3053
VL - 16
SP - 541
EP - 553
JO - IEEE Transactions on Smart Grid
JF - IEEE Transactions on Smart Grid
IS - 1
ER -