TY - JOUR
T1 - A Distributed Framework for Intense Ramping Management in Distribution Networks
AU - Fattaheian-Dehkordi, Sajjad
AU - Abbaspour, Ali
AU - Fotuhi-Firuzabad, Mahmud
AU - Lehtonen, Matti
N1 - Publisher Copyright:
IEEE
PY - 2023/1/1
Y1 - 2023/1/1
N2 - High-penetration of renewable energy sources (RESs) in power networks has resulted in new operational challenges in the system. Accordingly, due to the uncertainty as well as variability of power-outputs of RESs, the flexibility ramping capacity of the system should be improved. Accordingly, system operators would rely on local responsive resources (LRSs) in distribution networks (DNs) to guarantee the demand-supply balance in each area of the system and minimize its associated ramping requirements. Nevertheless, the introduction of multimicrogrid (multi-MG) structures would limit the direct-access of system operators over the LRSs scheduling. As a result, this paper aims to develop a novel framework for intense-ramping management in multi-MG systems to settle the demand-supply gap in the system while addressing the distributed nature of the network. Respectively, alternating direction method of multipliers (ADMM) is employed to develop a decentralized coordination scheme in the system. Moreover, transactive energy control signals are utilized in the context of the ADMM-algorithm in order to exploit the LRSs scheduling to address the ramping constraints of the overall system. Lastly, the scheme is simulated on 37-bus and 123-bus DNs to analyze its efficacy in the management of intense ramping conditions in multi-MG DNs.
AB - High-penetration of renewable energy sources (RESs) in power networks has resulted in new operational challenges in the system. Accordingly, due to the uncertainty as well as variability of power-outputs of RESs, the flexibility ramping capacity of the system should be improved. Accordingly, system operators would rely on local responsive resources (LRSs) in distribution networks (DNs) to guarantee the demand-supply balance in each area of the system and minimize its associated ramping requirements. Nevertheless, the introduction of multimicrogrid (multi-MG) structures would limit the direct-access of system operators over the LRSs scheduling. As a result, this paper aims to develop a novel framework for intense-ramping management in multi-MG systems to settle the demand-supply gap in the system while addressing the distributed nature of the network. Respectively, alternating direction method of multipliers (ADMM) is employed to develop a decentralized coordination scheme in the system. Moreover, transactive energy control signals are utilized in the context of the ADMM-algorithm in order to exploit the LRSs scheduling to address the ramping constraints of the overall system. Lastly, the scheme is simulated on 37-bus and 123-bus DNs to analyze its efficacy in the management of intense ramping conditions in multi-MG DNs.
KW - Costs
KW - Distributed Management
KW - Distribution networks
KW - DNA
KW - Multi-microgrid system
KW - Optimization
KW - Ramping management
KW - Renewable energy
KW - Renewable energy sources
KW - Responsive resources
KW - Transactive control
KW - Transactive energy
KW - Uncertainty
UR - http://www.scopus.com/inward/record.url?scp=85136889183&partnerID=8YFLogxK
U2 - 10.1109/TSG.2022.3199811
DO - 10.1109/TSG.2022.3199811
M3 - Article
AN - SCOPUS:85136889183
SN - 1949-3053
VL - 14
SP - 315
EP - 327
JO - IEEE Transactions on Smart Grids
JF - IEEE Transactions on Smart Grids
IS - 1
ER -