A Lithium-Ion Battery Simulator Based on a Diffusion and Switching Overpotential Hybrid Model for Dynamic Discharging Behavior and Runtime Predictions
A new battery simulator based on a hybrid model is proposed in this paper for dynamic discharging behavior and runtime predictions in existing electronic simulation environments, e.g., PSIM, so it can help power circuit designers to develop and optimize their battery-powered electronic systems. The...
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doaj-1c676ec19f80419382708ca550b8c7ef2020-11-24T22:35:18ZengMDPI AGEnergies1996-10732016-01-01915110.3390/en9010051en9010051A Lithium-Ion Battery Simulator Based on a Diffusion and Switching Overpotential Hybrid Model for Dynamic Discharging Behavior and Runtime PredictionsLan-Rong Dung0Hsiang-Fu Yuan1Jieh-Hwang Yen2Chien-Hua She3Ming-Han Lee4Department of Electrical and Computer Engineering, National Chiao-Tung University, 1001 Ta-Hsueh Rd., Hsinchu 30010, TaiwanInstitute of Electrical Control Engineering, National Chiao-Tung University, 1001 Ta-Hsueh Rd., Hsinchu 30010, TaiwanInstitute of Electrical Control Engineering, National Chiao-Tung University, 1001 Ta-Hsueh Rd., Hsinchu 30010, TaiwanMiTAC International Corp., No. 1, R & D 2nd Road, Hsinchu Science-Based Industrial Park, Hsinchu 30010, TaiwanDepartment of Electrical and Computer Engineering, National Chiao-Tung University, 1001 Ta-Hsueh Rd., Hsinchu 30010, TaiwanA new battery simulator based on a hybrid model is proposed in this paper for dynamic discharging behavior and runtime predictions in existing electronic simulation environments, e.g., PSIM, so it can help power circuit designers to develop and optimize their battery-powered electronic systems. The hybrid battery model combines a diffusion model and a switching overpotential model, which automatically switches overpotential resistance mode or overpotential voltage mode to accurately describe the voltage difference between battery electro-motive force (EMF) and terminal voltage. Therefore, this simulator can simply run in an electronic simulation software with less computational efforts and estimate battery performances by further considering nonlinear capacity effects. A linear extrapolation technique is adopted for extracting model parameters from constant current discharging tests, so the EMF hysteresis problem is avoided. For model validation, experiments and simulations in MATLAB and PSIM environments are conducted with six different profiles, including constant loads, an interrupted load, increasing and decreasing loads and a varying load. The results confirm the usefulness and accuracy of the proposed simulator. The behavior and runtime prediction errors can be as low as 3.1% and 1.2%, respectively.http://www.mdpi.com/1996-1073/9/1/51battery simulatoroverpotentiallinear extrapolationdiffusion modelequivalent circuit model (ECM)rate capacity effectrecovery effect |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lan-Rong Dung Hsiang-Fu Yuan Jieh-Hwang Yen Chien-Hua She Ming-Han Lee |
spellingShingle |
Lan-Rong Dung Hsiang-Fu Yuan Jieh-Hwang Yen Chien-Hua She Ming-Han Lee A Lithium-Ion Battery Simulator Based on a Diffusion and Switching Overpotential Hybrid Model for Dynamic Discharging Behavior and Runtime Predictions Energies battery simulator overpotential linear extrapolation diffusion model equivalent circuit model (ECM) rate capacity effect recovery effect |
author_facet |
Lan-Rong Dung Hsiang-Fu Yuan Jieh-Hwang Yen Chien-Hua She Ming-Han Lee |
author_sort |
Lan-Rong Dung |
title |
A Lithium-Ion Battery Simulator Based on a Diffusion and Switching Overpotential Hybrid Model for Dynamic Discharging Behavior and Runtime Predictions |
title_short |
A Lithium-Ion Battery Simulator Based on a Diffusion and Switching Overpotential Hybrid Model for Dynamic Discharging Behavior and Runtime Predictions |
title_full |
A Lithium-Ion Battery Simulator Based on a Diffusion and Switching Overpotential Hybrid Model for Dynamic Discharging Behavior and Runtime Predictions |
title_fullStr |
A Lithium-Ion Battery Simulator Based on a Diffusion and Switching Overpotential Hybrid Model for Dynamic Discharging Behavior and Runtime Predictions |
title_full_unstemmed |
A Lithium-Ion Battery Simulator Based on a Diffusion and Switching Overpotential Hybrid Model for Dynamic Discharging Behavior and Runtime Predictions |
title_sort |
lithium-ion battery simulator based on a diffusion and switching overpotential hybrid model for dynamic discharging behavior and runtime predictions |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2016-01-01 |
description |
A new battery simulator based on a hybrid model is proposed in this paper for dynamic discharging behavior and runtime predictions in existing electronic simulation environments, e.g., PSIM, so it can help power circuit designers to develop and optimize their battery-powered electronic systems. The hybrid battery model combines a diffusion model and a switching overpotential model, which automatically switches overpotential resistance mode or overpotential voltage mode to accurately describe the voltage difference between battery electro-motive force (EMF) and terminal voltage. Therefore, this simulator can simply run in an electronic simulation software with less computational efforts and estimate battery performances by further considering nonlinear capacity effects. A linear extrapolation technique is adopted for extracting model parameters from constant current discharging tests, so the EMF hysteresis problem is avoided. For model validation, experiments and simulations in MATLAB and PSIM environments are conducted with six different profiles, including constant loads, an interrupted load, increasing and decreasing loads and a varying load. The results confirm the usefulness and accuracy of the proposed simulator. The behavior and runtime prediction errors can be as low as 3.1% and 1.2%, respectively. |
topic |
battery simulator overpotential linear extrapolation diffusion model equivalent circuit model (ECM) rate capacity effect recovery effect |
url |
http://www.mdpi.com/1996-1073/9/1/51 |
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