Power Generation Technology ›› 2025, Vol. 46 ›› Issue (6): 1176-1183.DOI: 10.12096/j.2096-4528.pgt.24058
• Energy Storage • Previous Articles
Shigang BIAN, Tingting MENG, Lili YANG
Received:2024-08-03
Revised:2024-11-28
Published:2025-12-31
Online:2025-12-25
Contact:
Lili YANG
Supported by:CLC Number:
Shigang BIAN, Tingting MENG, Lili YANG. Numerical Study of Thermal Charging Supercapacitors Based on Cyclic Voltammetry[J]. Power Generation Technology, 2025, 46(6): 1176-1183.
| 参数 | 数值 |
|---|---|
| 计算单元宽度/μm | 1 000 |
| 计算单元高度/μm | 270 |
| 负极厚度/μm | 30 |
| 隔膜厚度/μm | 50 |
| 上下电解质域厚度/μm | 80 |
| 正极厚度/μm | 30 |
Tab. 1 Geometric parameters of the numerical model
| 参数 | 数值 |
|---|---|
| 计算单元宽度/μm | 1 000 |
| 计算单元高度/μm | 270 |
| 负极厚度/μm | 30 |
| 隔膜厚度/μm | 50 |
| 上下电解质域厚度/μm | 80 |
| 正极厚度/μm | 30 |
| 参数 | 数值 |
|---|---|
| 阳离子电荷z1/C | 1.6×10-9 |
| 阴离子电荷z2/C | 1.6×10-9 |
| 单位体积离子浓度c0/(mol/L) | 1 |
| 电解液离子扩散系数/(m2/s) | |
| 正极离子扩散系数/(m2/s) | |
| 负极离子扩散系数/(m2/s) | |
| 低温热源温度T0/K | 298.150 |
| 高温热源温度T/K | 303.150~348.150 |
| 线性电压扫描速率v/(V/s) | 10-3~102 |
| 最小扫描电压Vmin/V | 0 |
| 最大扫描电压Vmax/V | 1.200 |
Tab. 2 Computational parameters of the numerical model
| 参数 | 数值 |
|---|---|
| 阳离子电荷z1/C | 1.6×10-9 |
| 阴离子电荷z2/C | 1.6×10-9 |
| 单位体积离子浓度c0/(mol/L) | 1 |
| 电解液离子扩散系数/(m2/s) | |
| 正极离子扩散系数/(m2/s) | |
| 负极离子扩散系数/(m2/s) | |
| 低温热源温度T0/K | 298.150 |
| 高温热源温度T/K | 303.150~348.150 |
| 线性电压扫描速率v/(V/s) | 10-3~102 |
| 最小扫描电压Vmin/V | 0 |
| 最大扫描电压Vmax/V | 1.200 |
| [1] | 姜红丽,刘羽茜,冯一铭,等 .碳达峰、碳中和背景下“十四五”时期发电技术趋势分析[J].发电技术,2022,43(1):54-64. doi:10.12096/j.2096-4528.pgt.21030 |
| JIANG H L, LIU Y X, FENG Y M,et al .Analysis of power generation technology trend in 14th Five-Year Plan under the background of carbon peak and carbon neutrality[J].Power Generation Technology,2022,43(1):54-64. doi:10.12096/j.2096-4528.pgt.21030 | |
| [2] | 王依妍,陈景文 .基于ISSA的光储微网混合储能容量优化配置[J].智慧电力,2023,51(4):23-29. |
| WANG Y Y, CHEN J W .ISSA-based optimal configuration of optical storage microgrid hybrid energy storage capacity[J].Smart Power,2023,51(4):23-29. | |
| [3] | 范展滔,张鸿轩,楼楠,等 .混合储能聚合商参与能量-调频市场控制策略[J].电网与清洁能源,2024,40(5):130-138. |
| FAN Z T, ZHANG H X, LOU N,et al .Control strategies for hybrid energy storage aggregators to participate in the energy-frequency modulation market[J].Power System and Clean Energy,2024,40(5):130-138. | |
| [4] | WANG Y W, ZHANG B, YANG Y,et al .A new optimized control system architecture for solar photovoltaic energy storage application[J].IEICE Electronics Express,2021,18(1):20200404. doi:10.1587/elex.17.20200404 |
| [5] | 肖颖,梁耕源,雷博文,等 .用于能量收集的离子热电材料研究进展[J].材料导报,2023,37(4):5-13. |
| XIAO Y, LIANG G Y, LEI B W,et al .Research progress of ionic thermoelectric materials for energy harvesting[J].Materials Reports,2023,37(4):5-13. | |
| [6] | 李楠,高攀,刘佳伟,等 .Soret效应和Dufour效应对盐梯度太阳池热盐双扩散的影响研究[J].太阳能学报,2021,42(6):227-233. |
| LI N, GAO P, LIU J W,et al .Impact study of soret effect and dufour effect on double diffusion in salt gradiert solar pond[J].Acta Energiae Solaris Sinica,2021,42(6):227-233. | |
| [7] | 魏少鑫,金鹰,王瑾,等 .电池型电容器技术发展趋势展望[J].发电技术,2022,43(5):748-759. doi:10.12096/j.2096-4528.pgt.22115 |
| WEI S X, JIN Y, WANG J,et al .Prospect for development trend of battery-capacitor technology[J].Power Generation Technology,2022,43(5):748-759. doi:10.12096/j.2096-4528.pgt.22115 | |
| [8] | ZHU T T, SONG Z Y, LIN J M,et al .Ion-pore size match effects and high-performance cucurbit[8]uril-carbon-based supercapacitors[J].Electrochimica Acta,2022,405:139827. doi:10.1016/j.electacta.2021.139827 |
| [9] | 刘祺,薛明,章鹏程,等 .基于无线充电系统的多模块扩展均压技术研究与设计[J].电工技术学报,2024,39(22):6980-6989. |
| LIU Q, XUE M, ZHANG P C,et al .Modular extensible voltage equalization based on wireless charging system[J].Transactions of China Electrotechnical Society,2024,39(22):6980-6989. | |
| [10] | LUO X Y, CHEN Y, MO Y .A review of charge storage in porous carbon-based supercapacitors[J].New Carbon Materials,2021,36(1):49-68. doi:10.1016/s1872-5805(21)60004-5 |
| [11] | MENG T T, XUAN Y M, ZHANG X G .A thermally chargeable hybrid supercapacitor with high power density for directly converting heat to electricity[J].ACS Applied Energy Materials,2021,4(6):6055-6061. doi:10.1021/acsaem.1c00905 |
| [12] | 李鑫蕊,张金才,宋慧平,等 .生物质基碳材料的制备及其在超级电容器中的研究进展[J].功能材料,2024,55(3):3051-3063. |
| LI X R, ZHANG J C, SONG H P,et al .Preparation of biomass-based carbon materials and its research progress in supercapacitors[J].Journal of Functional Materials,2024,55(3):3051-3063. | |
| [13] | 张莉琼,刘超,肖睿 .生物炭材料应用于超级电容器的研究进展[J].新能源科技,2024(1):1-15. |
| ZHANG L Q, LIU C, XIAO R .Research progress of biochar materials applied in supercapacitors[J].New Energy Science and Technology,2024(1):1-15. | |
| [14] | 张万松,徐彦宾,王峰,等 .基于钴配合物所构建的超级电容器电极材料[J].化工时刊,2023,37(6):33-36. |
| ZHANG W S, XU Y B, WANG F,et al .Electrode materials for supercapacitors based on cobalt complexes[J].Chemical Industry Times,2023,37(6):33-36. | |
| [15] | SUN G W, SONG W H, LIU X J,et al .Capacitive matching of pore size and ion size in the negative and positive electrodes for supercapacitors[J].Electrochimica Acta,2011,56(25):9248-9256. doi:10.1016/j.electacta.2011.07.139 |
| [16] | LU H T, CHEN Y Q, ZHOU J H,et al .Simulation and optimization of electrochemical double layer capacitors: effects of ion size and diffusion coefficient[J].CIESC Journal,2019,70(10):4021-4031. |
| [17] | CHMIOLA J, YUSHIN G, GOGOTSI Y,et al .Anomalous increase in carbon capacitance at pore sizes less than 1 nanometer[J].Science,2006,313(5794):1760-1763. doi:10.1126/science.1132195 |
| [18] | PAN Q, TU W M, DING L,et al .Characteristics of electric double layer in different aqueous electrolyte solutions for supercapacitors[J].Wuhan University Journal of Natural Sciences,2012,17(3):200-204. doi:10.1007/s11859-012-0828-1 |
| [19] | WANG H N, THIELE A, PILON L .Simulations of cyclic voltammetry for electric double layers in asymmetric electrolytes:a generalized modified Poisson-Nernst-Planck model[J].The Journal of Physical Chemistry C,2013,117(36):18286-18297. doi:10.1021/jp402181e |
| [20] | REN Q L, ZHU H Y, CHEN K L,et al .Similarity principle based multi-physical parameter unification and comparison in salinity-gradient osmotic energy conversion[J].Applied Energy,2022,307:118312. doi:10.1016/j.apenergy.2021.118312 |
| [21] | LONG R, KUANG Z F, LIU Z C,et al .Temperature regulated reverse electrodialysis in charged nanopores[J].Journal of Membrane Science,2018,561:1-9. doi:10.1016/j.memsci.2018.05.026 |
| [22] | REN Q L, MENG F L, CHAN C L .Cell transport and suspension in high conductivity electrothermal flow with negative dielectrophoresis by immersed boundary-lattice Boltzmann method[J].International Journal of Heat and Mass Transfer,2019,128:1229-1244. doi:10.1016/j.ijheatmasstransfer.2018.09.062 |
| [23] | WANG H N, PILON L .Mesoscale modeling of electric double layer capacitors with three-dimensional ordered structures[J].Journal of Power Sources,2013,221:252-260. doi:10.1016/j.jpowsour.2012.08.002 |
| [24] | WANG H N, PILON L .Physical interpretation of cyclic voltammetry for measuring electric double layer capacitances[J].Electrochimica Acta,2012,64:130-139. doi:10.1016/j.electacta.2011.12.118 |
| [25] | MEI B A, MUNTESHARI O, LAU J,et al .Physical interpretations of nyquist plots for EDLC electrodes and devices[J].The Journal of Physical Chemistry C,2018,122(1):194-206. doi:10.1021/acs.jpcc.7b10582 |
| [26] | WANG H N, VARGHESE J, PILON L .Simulation of electric double layer capacitors with mesoporous electrodes:effects of morphology and electrolyte permittivity[J].Electrochimica Acta,2011,56(17):6189-6197. doi:10.1016/j.electacta.2011.03.140 |
| [27] | DONG T, PENG P, JIANG F M .Numerical modeling and analysis of the thermal behavior of NCM lithium-ion batteries subjected to very high C-rate discharge/charge operations[J].International Journal of Heat and Mass Transfer,2018,117:261-272. doi:10.1016/j.ijheatmasstransfer.2017.10.024 |
| [28] | FERRARIO M, KLEIN M L, MCDONALD I R .Cation transport in lithium sulphate based crystals[J].Molecular Physics,1995,86(4):923-938. doi:10.1080/00268979500102491 |
| [29] | HANTEL M M, WEINGARTH D, KÖTZ R .Parameters determining dimensional changes of porous carbons during capacitive charging[J].Carbon,2014,69:275-286. doi:10.1016/j.carbon.2013.12.026 |
| [30] | WANG H N, PILON L .Accurate simulations of electric double layer capacitance of ultramicroelectrodes[J].The Journal of Physical Chemistry C,2011,115(33):16711-16719. doi:10.1021/jp204498e |
| [31] | CONWAY B E. Electrochemical supercapacitors: scientific sundamentals and technological applications[M].Berlin:Springer Science & Business Media,2013. |
| [32] | PEAN C, ROTENBERG B, SIMON P,et al .Understanding the different (dis)charging steps of supercapacitors:influence of potential and solvation[J].Electrochimica Acta,2016,206:504-512. doi:10.1016/j.electacta.2016.02.106 |
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