Thermal behavior analysis of stacked-type supercapacitors with different cell structures

As a new energy storage element, supercapacitors have characteristics such as high power density, fast charge and discharge rates, green environmental protection, and long cycle life. Temperature is an important parameter of supercapacitors which significantly influences the stability of the superca...

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Main Authors: Yansong Li, Sihan Wang, Meina Zheng, Jun Liu
Format: Article
Language:English
Published: China electric power research institute 2018-03-01
Series:CSEE Journal of Power and Energy Systems
Online Access:https://ieeexplore.ieee.org/document/8315228
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spelling doaj-3bb5b92ff658478cb94393754b066aba2020-11-25T01:04:22ZengChina electric power research instituteCSEE Journal of Power and Energy Systems2096-00422096-00422018-03-014111212010.17775/CSEEJPES.2016.01410Thermal behavior analysis of stacked-type supercapacitors with different cell structuresYansong Li0Sihan Wang1Meina Zheng2Jun Liu3North China Electric Power University, Beijing, 102206, ChinaNorth China Electric Power University, Beijing, 102206, ChinaState Grid Tianjin Power Economics & Technology Research Institute, Tianjin 300000, ChinaNorth China Electric Power University, Beijing, 102206, ChinaAs a new energy storage element, supercapacitors have characteristics such as high power density, fast charge and discharge rates, green environmental protection, and long cycle life. Temperature is an important parameter of supercapacitors which significantly influences the stability of the supercapacitors. In this study, the finite element method is used to realize a coupling between a one-dimensional electrochemical model and a three-dimensional thermal model. Then, based on this model, the concept of limited cycle numbers is defined, and different unit quantities, unit size, and the effect of temperature under different temperature environments such as low temperature, room temperature, and high temperature on stacked-type supercapacitors is studied. Finally, stacked-type supercapacitors are compared with rolled-type supercapacitors considering the same cell size, density, and volume approximations. The simulation results show that the higher the number of packaging units, the lower is the limit cycle number. This phenomenon is more pronounced under high current than under low current conditions. Increasing the package size of the porous electrode or separator decreases the limiting cycles. Under the same unit volume scenario, improving the separator size proportion can accurately control the temperature rise at small current values. Under the same material, volume, and density approximations, the temperature rises slowly for stacked-type supercapacitors as compared to rolled-type supercapacitors. This phenomenon is more pronounced with an increase in current.https://ieeexplore.ieee.org/document/8315228
collection DOAJ
language English
format Article
sources DOAJ
author Yansong Li
Sihan Wang
Meina Zheng
Jun Liu
spellingShingle Yansong Li
Sihan Wang
Meina Zheng
Jun Liu
Thermal behavior analysis of stacked-type supercapacitors with different cell structures
CSEE Journal of Power and Energy Systems
author_facet Yansong Li
Sihan Wang
Meina Zheng
Jun Liu
author_sort Yansong Li
title Thermal behavior analysis of stacked-type supercapacitors with different cell structures
title_short Thermal behavior analysis of stacked-type supercapacitors with different cell structures
title_full Thermal behavior analysis of stacked-type supercapacitors with different cell structures
title_fullStr Thermal behavior analysis of stacked-type supercapacitors with different cell structures
title_full_unstemmed Thermal behavior analysis of stacked-type supercapacitors with different cell structures
title_sort thermal behavior analysis of stacked-type supercapacitors with different cell structures
publisher China electric power research institute
series CSEE Journal of Power and Energy Systems
issn 2096-0042
2096-0042
publishDate 2018-03-01
description As a new energy storage element, supercapacitors have characteristics such as high power density, fast charge and discharge rates, green environmental protection, and long cycle life. Temperature is an important parameter of supercapacitors which significantly influences the stability of the supercapacitors. In this study, the finite element method is used to realize a coupling between a one-dimensional electrochemical model and a three-dimensional thermal model. Then, based on this model, the concept of limited cycle numbers is defined, and different unit quantities, unit size, and the effect of temperature under different temperature environments such as low temperature, room temperature, and high temperature on stacked-type supercapacitors is studied. Finally, stacked-type supercapacitors are compared with rolled-type supercapacitors considering the same cell size, density, and volume approximations. The simulation results show that the higher the number of packaging units, the lower is the limit cycle number. This phenomenon is more pronounced under high current than under low current conditions. Increasing the package size of the porous electrode or separator decreases the limiting cycles. Under the same unit volume scenario, improving the separator size proportion can accurately control the temperature rise at small current values. Under the same material, volume, and density approximations, the temperature rises slowly for stacked-type supercapacitors as compared to rolled-type supercapacitors. This phenomenon is more pronounced with an increase in current.
url https://ieeexplore.ieee.org/document/8315228
work_keys_str_mv AT yansongli thermalbehavioranalysisofstackedtypesupercapacitorswithdifferentcellstructures
AT sihanwang thermalbehavioranalysisofstackedtypesupercapacitorswithdifferentcellstructures
AT meinazheng thermalbehavioranalysisofstackedtypesupercapacitorswithdifferentcellstructures
AT junliu thermalbehavioranalysisofstackedtypesupercapacitorswithdifferentcellstructures
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