New modified algorithm: θ-turbulent flow of water-based optimization
The reactive power control of a power system is discussed under two types of variables: continuous variables (e.g., generator bus voltages) and discrete variables (e.g., transformer taps and the size of switched shunt capacitors). This paper proposes a novel and powerful algorithm, named turbulent f...
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          | Published in | Environmental science and pollution research international Vol. 30; no. 28; pp. 71726 - 71740 | 
|---|---|
| Main Authors | , , | 
| Format | Journal Article | 
| Language | English | 
| Published | 
        Berlin/Heidelberg
          Springer Berlin Heidelberg
    
        01.06.2023
     Springer Nature B.V  | 
| Subjects | |
| Online Access | Get full text | 
| ISSN | 1614-7499 0944-1344 1614-7499  | 
| DOI | 10.1007/s11356-021-16072-x | 
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| Abstract | The reactive power control of a power system is discussed under two types of variables: continuous variables (e.g., generator bus voltages) and discrete variables (e.g., transformer taps and the size of switched shunt capacitors). This paper proposes a novel and powerful algorithm, named turbulent flow of water-based optimization (TFWO) as well as a new improved version of this algorithm, called
θ
-TFWO, for optimal reactive power distribution (ORPD) to reduce losses. The proposed method is applied to two large-scale IEEE 57-bus systems. Furthermore, to demonstrate the competitive performance of the suggested algorithm, its performance was compared to that of several other algorithms, including biogeography-based optimization (BBO), social spider algorithm (SSA), and optics inspired optimization (OIO), in terms of solving the ORPD problem. The results confirmed the robustness and effectiveness of the proposed method as a powerful optimizer applicable to optimal reactive power distribution in power systems. | 
    
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| AbstractList | The reactive power control of a power system is discussed under two types of variables: continuous variables (e.g., generator bus voltages) and discrete variables (e.g., transformer taps and the size of switched shunt capacitors). This paper proposes a novel and powerful algorithm, named turbulent flow of water-based optimization (TFWO) as well as a new improved version of this algorithm, called θ-TFWO, for optimal reactive power distribution (ORPD) to reduce losses. The proposed method is applied to two large-scale IEEE 57-bus systems. Furthermore, to demonstrate the competitive performance of the suggested algorithm, its performance was compared to that of several other algorithms, including biogeography-based optimization (BBO), social spider algorithm (SSA), and optics inspired optimization (OIO), in terms of solving the ORPD problem. The results confirmed the robustness and effectiveness of the proposed method as a powerful optimizer applicable to optimal reactive power distribution in power systems.The reactive power control of a power system is discussed under two types of variables: continuous variables (e.g., generator bus voltages) and discrete variables (e.g., transformer taps and the size of switched shunt capacitors). This paper proposes a novel and powerful algorithm, named turbulent flow of water-based optimization (TFWO) as well as a new improved version of this algorithm, called θ-TFWO, for optimal reactive power distribution (ORPD) to reduce losses. The proposed method is applied to two large-scale IEEE 57-bus systems. Furthermore, to demonstrate the competitive performance of the suggested algorithm, its performance was compared to that of several other algorithms, including biogeography-based optimization (BBO), social spider algorithm (SSA), and optics inspired optimization (OIO), in terms of solving the ORPD problem. The results confirmed the robustness and effectiveness of the proposed method as a powerful optimizer applicable to optimal reactive power distribution in power systems. The reactive power control of a power system is discussed under two types of variables: continuous variables (e.g., generator bus voltages) and discrete variables (e.g., transformer taps and the size of switched shunt capacitors). This paper proposes a novel and powerful algorithm, named turbulent flow of water-based optimization (TFWO) as well as a new improved version of this algorithm, called θ -TFWO, for optimal reactive power distribution (ORPD) to reduce losses. The proposed method is applied to two large-scale IEEE 57-bus systems. Furthermore, to demonstrate the competitive performance of the suggested algorithm, its performance was compared to that of several other algorithms, including biogeography-based optimization (BBO), social spider algorithm (SSA), and optics inspired optimization (OIO), in terms of solving the ORPD problem. The results confirmed the robustness and effectiveness of the proposed method as a powerful optimizer applicable to optimal reactive power distribution in power systems. The reactive power control of a power system is discussed under two types of variables: continuous variables (e.g., generator bus voltages) and discrete variables (e.g., transformer taps and the size of switched shunt capacitors). This paper proposes a novel and powerful algorithm, named turbulent flow of water-based optimization (TFWO) as well as a new improved version of this algorithm, called θ-TFWO, for optimal reactive power distribution (ORPD) to reduce losses. The proposed method is applied to two large-scale IEEE 57-bus systems. Furthermore, to demonstrate the competitive performance of the suggested algorithm, its performance was compared to that of several other algorithms, including biogeography-based optimization (BBO), social spider algorithm (SSA), and optics inspired optimization (OIO), in terms of solving the ORPD problem. The results confirmed the robustness and effectiveness of the proposed method as a powerful optimizer applicable to optimal reactive power distribution in power systems.  | 
    
| Author | Abdul-Malek, Zulkurnain Naderipour, Amirreza Davoudkhani, Iraj Faraji  | 
    
| Author_xml | – sequence: 1 givenname: Amirreza orcidid: 0000-0002-1466-1702 surname: Naderipour fullname: Naderipour, Amirreza email: namirreza@utm.my organization: School of Housing, Building and Planning, Universiti Sains Malaysia – sequence: 2 givenname: Iraj Faraji surname: Davoudkhani fullname: Davoudkhani, Iraj Faraji organization: Department of Electrical Engineering, Azad University, Khalkhal Branch – sequence: 3 givenname: Zulkurnain surname: Abdul-Malek fullname: Abdul-Malek, Zulkurnain organization: Institute of High Voltage & High Current, School of Electrical Engineering, Faculty of Engineering, Universiti Teknologi Malaysia  | 
    
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/34472027$$D View this record in MEDLINE/PubMed | 
    
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| CitedBy_id | crossref_primary_10_3390_app13010527 crossref_primary_10_3390_app13084760 crossref_primary_10_1007_s13198_022_01758_3 crossref_primary_10_1016_j_energy_2024_131968  | 
    
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| Keywords | ORPD problem turbulent flow of water-based optimization Power systems TFWO Control variables θ-turbulent flow of water-based optimization (θ-TFWO)  | 
    
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| Snippet | The reactive power control of a power system is discussed under two types of variables: continuous variables (e.g., generator bus voltages) and discrete... | 
    
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| SubjectTerms | Algorithms Alternative energy sources Aquatic Pollution Atmospheric Protection/Air Quality Control/Air Pollution Biogeography Circular Economy for Global Water Security Continuity (mathematics) Earth and Environmental Science Ecotoxicology Electric power distribution Electric Power Supplies Electrical engineering Electricity distribution Environment Environmental Chemistry Environmental Health Environmental science Fluid dynamics Optics Optimization Power Power control Reactive power Shunt capacitors spiders Turbulent flow Waste Water Technology Water Water Management Water Pollution Control  | 
    
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| Title | New modified algorithm: θ-turbulent flow of water-based optimization | 
    
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