Affiliation:
1. Department of Electrical Engineering Faculty of Engineering University of Isfahan Isfahan Iran
Abstract
AbstractIn response to growing reliance on electricity and gas systems, this paper introduces a stochastic bi‐level model for the optimized integration of these systems. This integration is achieved through sizing and allocating of power‐to‐gas (P2G) and gas‐to‐power (G2P) units. The first level of the model focuses on decisions related to P2G and G2P unit installations, while the second level addresses optimal system operation considering decisions made from first level and stochastic scenarios. The primary aim is to enhance energy‐sharing capabilities through coupling devices and mitigate wind generation curtailment. An economic evaluation assesses the model's effectiveness in reducing costs. N − 1 contingency analysis gauges the integrated system's ability to supply load under emergency conditions. Two new indices, performance of the electricity system and performance of the natural gas system, are proposed for N − 1 contingency analysis. These indices quantify the proportion of the supplied load to the total load, thereby illustrating the system's capacity to meet demand. For numerical investigation, the proposed model is applied to a modified IEEE 14‐bus power system and a 10‐node natural gas system. Numerical results demonstrate a 9.426% reduction in investment costs and a significant 10.6% reduction in wind curtailment costs through proposed planning model.
Publisher
Institution of Engineering and Technology (IET)
Reference26 articles.
1. Electricity‐heat‐based integrated demand response considering double auction energy market with multi‐energy storage for interconnected areas;Wang D.;CSEE J. Power Energy Syst.,2022
2. Optimal operation of integrated energy systems subject to coupled demand constraints of electricity and natural gas;Qin Y.;CSEE J. Power Energy Syst.,2020
3. Reliability assessment of integrated electricity and natural gas transmission systems in presence of power‐to‐gas and combined heat and power technologies;Tabebordbar A.;CSEE J. Power Energy Syst.,2023
4. Electrolyzer cell‐methanation/Sabatier reactors integration for power‐to‐gas energy storage: Thermo‐economic analysis and multi‐objective optimization;Jalili M.;Appl. Energy,2023
5. Affine Policies for Flexibility Provision by Natural Gas Networks to Power Systems