LAPSE:2023.10588
Published Article

LAPSE:2023.10588
On the Exact Analytical Formulas of Leakage Current-Based Supercapacitor Model Operating in Industrial Applications
February 27, 2023
Abstract
The resistance−capacitance (RC) model is one of the most applicable circuits for modeling the charging and discharging processes of supercapacitors (SCs). Although this circuit is usually used in the electric and thermal investigation of the performance of SCs, it does not include leakage currents. This paper presents exact analytical formulas of leakage-current-based supercapacitor models that can be used in industrial applications, i.e., constant-power-based applications. In the proposed model, current and voltage are represented as a solution of nonlinear equations that are solved using the standard Newton method. The proposed expressions’ accuracy is compared with the results obtained using traditional numerical integration methods with leakage current formulation and other methods, found in the literature, with no leakage current formulation. The results confirm that including leakage current represents a more accurate and realistic manner of modeling SCs. The results show that the derived expressions are precise, allowing the generation of results that closely match those obtained using traditional numerical-based methods. The derived expressions can be used to investigate SCs further and achieve more accurate and efficient regulation and control of SCs in different applications.
The resistance−capacitance (RC) model is one of the most applicable circuits for modeling the charging and discharging processes of supercapacitors (SCs). Although this circuit is usually used in the electric and thermal investigation of the performance of SCs, it does not include leakage currents. This paper presents exact analytical formulas of leakage-current-based supercapacitor models that can be used in industrial applications, i.e., constant-power-based applications. In the proposed model, current and voltage are represented as a solution of nonlinear equations that are solved using the standard Newton method. The proposed expressions’ accuracy is compared with the results obtained using traditional numerical integration methods with leakage current formulation and other methods, found in the literature, with no leakage current formulation. The results confirm that including leakage current represents a more accurate and realistic manner of modeling SCs. The results show that the derived expressions are precise, allowing the generation of results that closely match those obtained using traditional numerical-based methods. The derived expressions can be used to investigate SCs further and achieve more accurate and efficient regulation and control of SCs in different applications.
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Keywords
analytical expressions, constant power applications, Energy Storage, leakage currents, supercapacitors
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Suggested Citation
Ali ZM, Calasan M, Aleem SHEA, Hasanien HM. On the Exact Analytical Formulas of Leakage Current-Based Supercapacitor Model Operating in Industrial Applications. (2023). LAPSE:2023.10588
Author Affiliations
Ali ZM: Electrical Engineering Department, College of Engineering, Prince Sattam bin Abdulaziz University, Wadi Addawaser 11991, Saudi Arabia; Electrical Engineering Department, Aswan Faculty of Engineering, Aswan University, Aswan 81542, Egypt [ORCID]
Calasan M: Faculty of Electrical Engineering, University of Montenegro, 81000 Podgorica, Montenegro [ORCID]
Aleem SHEA: Department of Electrical Engineering, Valley High Institute of Engineering and Technology, Science Valley Academy, Qalyubia 44971, Egypt [ORCID]
Hasanien HM: Electrical Power and Machines Department, Faculty of Engineering, Ain Shams University, Cairo 11517, Egypt [ORCID]
Calasan M: Faculty of Electrical Engineering, University of Montenegro, 81000 Podgorica, Montenegro [ORCID]
Aleem SHEA: Department of Electrical Engineering, Valley High Institute of Engineering and Technology, Science Valley Academy, Qalyubia 44971, Egypt [ORCID]
Hasanien HM: Electrical Power and Machines Department, Faculty of Engineering, Ain Shams University, Cairo 11517, Egypt [ORCID]
Journal Name
Energies
Volume
16
Issue
4
First Page
1903
Year
2023
Publication Date
2023-02-14
ISSN
1996-1073
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Original Submission
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PII: en16041903, Publication Type: Journal Article
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LAPSE:2023.10588
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https://doi.org/10.3390/en16041903
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Feb 27, 2023
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