A Second-Order Cone Programming (SOCP) Based Optimal Power Flow (OPF) Model With Cyclic Constraints for Power Transmission Systems

被引:14
作者
Chowdhury, Md Mahmud-Ul-Tarik [1 ]
Kamalasadan, Sukumar [1 ]
Paudyal, Sumit [2 ]
机构
[1] Univ North Carolina Charlotte, Dept Elect Engn, Charlotte, NC 28262 USA
[2] Florida Int Univ, Dept Elect Engn, Miami, FL 33174 USA
基金
美国国家科学基金会;
关键词
Voltage; Mathematical models; Load flow; Computational modeling; Programming; Reactive power; Load modeling; Optimal power flow (OPF); convex relaxation; second-order conic programming (SOCP); cyclic constraints; transmission networks; NATURAL-GAS; ENERGY-FLOW; SIMULATION; OPERATION;
D O I
10.1109/TPWRS.2023.3247891
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
For meshed power networks, even though the conic relaxation is shown to be exact, the relaxation of angles may not be exact using the existing Second-Order Cone Programming (SOCP) based optimal power flow (OPF) models. Power transmission networks generally have meshed orientation, and the cyclic angle constraints are not satisfied with the existing SOCP-OPF models. This work proposes a SOCP-OPF model for power transmission networks that satisfies the cyclic angle constraints for any mesh in the network. The novelty of the proposed OPF model is that it defines a convex envelope to represent the relative bus voltage angles that satisfy the cyclic constraint criteria for a meshed network. The proposed SOCP-OPF model is tested on the IEEE 14-bus, 57-bus, 118-bus, 500-bus, and 2736-bus networks. The case studies demonstrate that the proposed model is computationally efficient and scalable for large transmission networks compared to the Nonlinear Programming (NLP) and semi-definite programming (SDP) counterparts.
引用
收藏
页码:1032 / 1043
页数:12
相关论文
共 30 条
[1]  
Ailer P., 2001, Periodica Polytechnica Transportation Engineering, V29, P117
[2]  
Argwala M., 2021, Working Papers, V008
[3]   Dynamic optimization of natural gas networks under customer demand uncertainties [J].
Behrooz, Hesam Ahmadian ;
Boozarjomehry, R. Bozorgmehry .
ENERGY, 2017, 134 :968-983
[4]   Convex Hull Based Robust Security Region for Electricity-Gas Integrated Energy Systems [J].
Chen, Sheng ;
Wei, Zhinong ;
Sun, Guoqiang ;
Wei, Wei ;
Wang, Dan .
IEEE TRANSACTIONS ON POWER SYSTEMS, 2019, 34 (03) :1740-1748
[5]   Generalized phasor modeling of dynamic gas flow for integrated electricity-gas dispatch [J].
Chen, Yuwei ;
Guo, Qinglai ;
Sun, Hongbin ;
Pan, Zhaoguang ;
Chen, Binbin .
APPLIED ENERGY, 2021, 283
[6]   Hybrid Possibilistic-Probabilistic Energy Flow Assessment for Multi-Energy Carrier Systems [J].
Dong, Qianyu ;
Sun, Qiuye ;
Huang, Yujia ;
Li, Zhibo ;
Cheng, Chong .
IEEE ACCESS, 2019, 7 :176115-176126
[7]   Simulation of transients in natural gas pipelines [J].
Dorao, C. A. ;
Fernandino, M. .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2011, 3 (01) :349-355
[8]   Power-to-Gas in gas and electricity distribution systems: A comparison of different modeling approaches [J].
Fambri, Gabriele ;
Diaz-Londono, Cesar ;
Mazza, Andrea ;
Badami, Marco ;
Weiss, Robert .
JOURNAL OF ENERGY STORAGE, 2022, 55
[9]   Dynamic Optimal Energy Flow in the Integrated Natural Gas and Electrical Power Systems [J].
Fang, Jiakun ;
Zeng, Qing ;
Ai, Xiaomeng ;
Chen, Zhe ;
Wen, Jinyu .
IEEE TRANSACTIONS ON SUSTAINABLE ENERGY, 2018, 9 (01) :188-198
[10]   A computational modelling of natural gas flow in looped network: Effect of upstream hydrogen injection on the structural integrity of gas pipelines [J].
Hafsi, Zahreddine ;
Elaoud, Sami ;
Mishra, Manoranjan .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2019, 64 :107-117