Multiobjective Long-Period Optimal Planning Model for a Grid-Connected Renewable-Battery System

被引:8
作者
Khezri, Rahmat [1 ,2 ]
Mahmoudi, Amin [1 ]
Aki, Hirohisa [3 ]
机构
[1] Flinders Univ S Australia, Coll Sci & Engn, Adelaide, SA 5042, Australia
[2] Chalmers Univ Technol, S-41296 Gothenburg, Sweden
[3] Univ Tsukuba, Fac Engn Informat & Syst, Ibaraki 3058577, Japan
关键词
Cost of electricity (COE); grid dependence (GD); long-period operation; optimal sizing; practicality; total curtailed energy (TCE); HYBRID POWER-SYSTEM; OPTIMIZATION; STORAGE; PV; DEMAND; DESIGN; COST;
D O I
10.1109/TIA.2022.3167010
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This article develops a practical framework for the multiobjective optimal planning of a grid-connected renewable-battery system considering a long-period operation. The capacities of wind turbine, solar photovoltaic (PV), and battery storage are optimized by minimizing three objective functions: cost of electricity (COE), grid dependence (GD), and total curtailed energy (TCE). A new rule-based energy management is developed for the long-period operation, where: 1) the capacity degradations of PV and battery are applied; 2) purchase and sell electricity prices are updated for each year using interest and escalation rates; and 3) the salvation value of the components is considered to achieve a realistic economic analysis of the planning problem. The developed multiobjective optimal planning model is examined using the long-period (ten years) real data of wind speed, solar insolation, ambient temperature, and load consumption for a grid-connected household in Australia. It is found that a household with the minimum GD (0.008%) results in a COE of 116 cent/k Wh with a TCE of 100 MWh in ten years. The proposed optimal planning framework based on the long-period operation is compared with the short-period operation.
引用
收藏
页码:5055 / 5067
页数:13
相关论文
共 28 条
[1]   Multiobjective evolutionary algorithms for electric power dispatch problem [J].
Abido, M. A. .
IEEE TRANSACTIONS ON EVOLUTIONARY COMPUTATION, 2006, 10 (03) :315-329
[2]   Two-Stage Robust Sizing and Operation Co-Optimization for Residential PVx2013;Battery Systems Considering the Uncertainty of PV Generation and Load [J].
Aghamohamadi, Mehrdad ;
Mahmoudi, Amin ;
Haque, Mohammed H. .
IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS, 2021, 17 (02) :1005-1017
[3]   Consumer preferences for household-level battery energy storage [J].
Agnew, Scott ;
Dargusch, Paul .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 75 :609-617
[4]   Design Optimization of a Residential PV-Battery Microgrid With a Detailed Battery Lifetime Estimation Model [J].
Alramlawi, Mansour ;
Li, Pu .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2020, 56 (02) :2020-2030
[5]  
[Anonymous], GLOBAL OPTIMIZATION
[6]  
[Anonymous], AUSTR ARE HOLDING TH
[7]   Multi-Objective Sizing of Battery Energy Storage Systems for Stackable Grid Applications [J].
Arias, Nataly Banol ;
Lopez, Juan Camilo ;
Hashemi, Seyedmostafa ;
Franco, John F. ;
Rider, Marcos J. .
IEEE TRANSACTIONS ON SMART GRID, 2021, 12 (03) :2708-2721
[8]   Techno-Economical Model Based Optimal Sizing of PV-Battery Systems for Microgrids [J].
Bandyopadhyay, Soumya ;
Mouli, Gaulham Ram Chandra ;
Qin, Zian ;
Elizondo, Laura Ramirez ;
Bauer, Pavol .
IEEE TRANSACTIONS ON SUSTAINABLE ENERGY, 2020, 11 (03) :1657-1668
[9]  
Bureau of Meteorology, AUSTR COMM ACC TOW F
[10]   Optimal Sizing for Grid-Tied Microgrids With Consideration of Joint Optimization of Planning and Operation [J].
Chen, Jian ;
Zhang, Weitong ;
Li, Jiaqi ;
Zhang, Wen ;
Liu, Yutian ;
Zhao, Bo ;
Zhang, Yicheng .
IEEE TRANSACTIONS ON SUSTAINABLE ENERGY, 2018, 9 (01) :237-248