A multi-objective equilibrium optimization for optimal allocation of batteries in distribution systems with lifetime maximization

被引:18
|
作者
El-Ela, Adel A. Abou [1 ]
El-Sehiemy, Ragab A. [2 ]
Shaheen, Abdullah M. [3 ]
Wahbi, Walaa A. [4 ]
Mouwafi, Mohamed T. [1 ]
机构
[1] Menoufiya Univ, Fac Engn, Elect Engn Dept, Shibin Al Kawm, Egypt
[2] Kafrelshiekh Univ, Fac Engn, Elect Engn Dept, Kafrelshiekh, Egypt
[3] Suez Univ, Fac Engn, Elect Engn Dept, Suez, Egypt
[4] Behaira Water & Draining Co BWaDC, Behaira, Egypt
关键词
Photovoltaic units; Battery lifetime; Equilibrium optimizer methodology; Multi objective model; Batteries; Distribution systems; Grid and solar photovoltaic emissions; ENERGY-STORAGE SYSTEMS; OPTIMAL PLACEMENT; DISTRIBUTION NETWORKS; INTEGRATION; MODELS; PV;
D O I
10.1016/j.est.2022.105795
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Many economic, environmental, and technical benefits have been achieved in recent years as a result of the integration of renewable energy resources (RERs) and battery energy storage units (BESUs) through the distri-bution network. However, unplanned allocating of the integrated BESUs and RERs leads to excessive investment costs and insecure system operation. Moreover, the charging and discharging processes have a direct impact on the degradation of the BESUs, and consequently, the stability of the BESUs will be affected as the battery ages. Therefore, this paper presents the trade-off between different conflicting objectives. In the presented multi -objective model, the battery lifetime maximization is considered in the allocation problem, for the first time, by maximizing the battery cycle to failure (CTF). On the other hand, different beneficial objectives are included by minimizing the operation and investment costs of the integrated units, the cost of energy not supplied (CENS), the cost of power loss, and the cost of carbon dioxide (CO2) emissions. For solving this model, a multi-objective equilibrium optimization technique (MOEOT) is proposed to determine the optimum sites and sizes of photo-voltaic (PV) and BESUs, maximum and minimum battery state of charge, and the charge hours. The proposed approach is employed on IEEE standard 30-bus and 69-bus radial distribution networks. The proposed MOEOT successfully acquires Pareto optimal front with diverse candidate options of different CTF and corresponding costs. Also, the impacts of varying depth of discharge (DOD) and charge and discharge hours for BESUs on the system performance are analyzed. For the IEEE 30 bus system, as the hours of the battery charge and discharge are increased from 2 to 12 h, the battery CTF is increased by 1 %; the power losses costs are decreased by 8.6 %; the emission costs are decreased with 1 %, and the life cycle cost is decreased with percentage 1 %. For the IEEE 69 bus system, the battery CTF is increased by 1 %; the power loss costs are decreased by 17 %; the emission costs are decreased by 1.8 %, and the life cycle cost is decreased by 0.1 %.
引用
收藏
页数:20
相关论文
共 50 条
  • [31] Allocation and Sizing of Distributed Generators in Distribution System Using Multi-Objective Optimization
    dos Santos Junior, Vanio Ferreira
    Freire Ferraz, Renato Santos
    Rueda-Medina, Augusto Cesar
    [J]. 2023 15TH SEMINAR ON POWER ELECTRONICS AND CONTROL, SEPOC, 2023,
  • [32] Stacks multi-objective allocation optimization for multi-stack fuel cell systems
    Zhang, Gang
    Zhou, Su
    Gao, Jianhua
    Fan, Lei
    Lu, Yanda
    [J]. APPLIED ENERGY, 2023, 331
  • [33] Multi-Objective Approaches to Optimal Testing Resource Allocation in Modular Software Systems
    Wang, Zai
    Tang, Ke
    Yao, Xin
    [J]. IEEE TRANSACTIONS ON RELIABILITY, 2010, 59 (03) : 563 - 575
  • [34] An evolutionary approach for optimal multi-objective resource allocation in distributed computing systems
    Kishor, Avadh
    Niyogi, Rajdeep
    [J]. CONCURRENT ENGINEERING-RESEARCH AND APPLICATIONS, 2020, 28 (02): : 97 - 109
  • [35] Towards optimal CMOS lifetime via unified reliability modeling and multi-objective optimization
    Papadopoulos, Agathoklis
    Theocharides, Theocharis
    Michael, Maria K.
    [J]. 2011 IEEE INTERNATIONAL SYMPOSIUM ON CIRCUITS AND SYSTEMS (ISCAS), 2011, : 1049 - 1052
  • [36] Multi-objective equilibrium optimizer: framework and development for solving multi-objective optimization problems
    Premkumar, M.
    Jangir, Pradeep
    Sowmya, R.
    Alhelou, Hassan Haes
    Mirjalili, Seyedali
    Kumar, B. Santhosh
    [J]. JOURNAL OF COMPUTATIONAL DESIGN AND ENGINEERING, 2022, 9 (01) : 24 - 50
  • [37] Multi-objective optimal allocation and performance evaluation for energy storage in energy systems
    Kong, Xue
    Wang, Hongye
    Li, Nan
    Mu, Hailin
    [J]. ENERGY, 2022, 253
  • [38] Multi-Objective Optimization-Based Approach for Throughput Maximization in Reconfigurable Manufacturing Systems
    Belaiche, Leila
    Kahloul, Laid
    Benharzallah, Saber
    Hafidi, Yousra
    [J]. 2018 FIFTH INTERNATIONAL SYMPOSIUM ON INNOVATION IN INFORMATION AND COMMUNICATION TECHNOLOGY (ISIICT 2018), 2018, : 129 - 136
  • [39] Optimal Allocation of Energy Storage Devices in Distribution Systems Considering Lifetime Characteristics of Batteries
    Camargo, Alison R.
    Castro, Carlos A.
    Lavorato, Marina
    [J]. 2016 IEEE INTERNATIONAL CONFERENCE ON POWER SYSTEM TECHNOLOGY (POWERCON), 2016,
  • [40] Multi-objective optimization for optimal groundwater remediation design and management systems
    Thangjam Somchand Singh
    Dibakar Chakrabarty
    [J]. Geosciences Journal, 2010, 14 : 87 - 97