Numerical Modelling of Discharging the Lithium-Sulphur Batteries in Ansys Fluent
DOI:
https://doi.org/10.3849/aimt.01525Keywords:
equivalent circuit model, Multi-Scale Multi-Domain, lithium-sulphur battery, numerical simulationAbstract
Lithium-sulfur batteries appear to be an exciting technology for energy storage due to their many advantageous properties. Due to its low weight and high energy, this technology could be used in aviation, aerospace or in heavy electric vehicles or even for mobile applications. This article investigates possible approaches for modelling of lithium-sulfur batteries. A new method using Ansys Fluent add-on Multi-Scale Multi-Domain battery module, originally designed for lithium-ion batteries, is presented. Battery characteristics are described through an equivalent circuit model, which can capture its complex characteristics. The results suggest that the built-in Ansys Fluent model can be successfully extended for 3D modelling of lithium-sulfur batteries. The critical point of the simulation is the precise definition of equivalent circuit model parameters.
References
LUCCHESE, F.C., L.N. CANHA, W.S. BRIGNOL, C.A.S. RANGEL, B.K. HAMMERSCHMITT and C.C. CASTRO. A Review on Energy Storage Systems and Military Applications. In: 2020 55th International Universities Power Engineering Conference (UPEC). Turin: IEEE, 2020. DOI 10.1109/UPEC49904.2020.9209892.
NXUMALO, Z.C, P. TARWIREYI and M.O ADIGUN. Lithium-Based Batteries in Tactical Military Applications: A review. In: 2015 International Conference on Computer, Communications, and Control Technology (I4CT). Kuching: IEEE, 2015, pp. 575-579. DOI 10.1109/I4CT.2015.7219644.
HOFMANN, A.F., D.N. FRONCZEK and W.G. BESSLER. Mechanistic Modeling of Polysulfide Shuttle and Capacity Loss in Lithium–Sulfur Batteries. Journal of Power Sources, 2014, 259, pp. 300-310. DOI 10.1016/j99.jpowsour.2014.02.082.
XU, R., I. BELHAROUAK, X. ZHANG, R. CHAMOUN, C. YU, Y. REN, A. NIE, R. SHAHBAZIAN-YASSAR, J. LU, J.C.M. LI and K. AMINE. Insight into Sulfur Reactions in Li–S Batteries. ACS Applied Materials & Interfaces, 2014, 6(24), pp. 21938-21945. DOI 10.1021/am504763p.
ROBINSON, J.B. et al. 2021 Roadmap on Lithium Sulfur Batteries. Journal of Physics: Energy, 2021, 3(2021), 031501. DOI 10.1088/2515-7655/abdb9a.
DÖRFLER, S., S. WALUS, J. LOCKE, A. FOTOUHI, D.J. AUGER, N. SHATERI, T. ABENDROTH, P. HÄRTEL, H. ALTHUES and S. KASKEL. Recent Progress and Emerging Application Areas for Lithium–Sulfur Battery Technology. Energy Technology, 2021, 9(1). DOI 10.1002/ente.202000694.
DENG, Z., Z. ZHANG, Y. LAI, J. LIU, J. LI and Y. LIU. Electrochemical Impedance Spectroscopy Study of a Lithium/Sulfur Battery: Modeling and Analysis of Capacity Fading. Journal of The Electrochemical Society, 2013, 160(4), pp. A553-A558. DOI 10.1149/2.026304jes.
FOTOUHI, A., D.J. AUGER, K. PROPP, S. LONGO and M. WILD. A Review on Electric Vehicle Battery Modelling: From Lithium-Ion toward Lithium–Sulphur. Renewable and Sustainable Energy Reviews, 2016, 56, pp. 1008-1021. DOI 10.1016/j.rser.2015.12.009.
FOTOUHI, A., D.J. AUGER, K. PROPP and S. LONGO. Electric Vehicle Battery Parameter Identification and SOC Observability Analysis: NiMH and Li-S Case Studies. IET Power Electronics, 2017, 10(11), pp. 1289-1297. DOI 10.1049/iet-pel.2016.0777.
KNAP, V., D.-I. STROE, R. TEODORESCU, M. SWIERCZYNSKI and T. STANCIU. Electrical Circuit Models for Performance Modeling of Lithium-Sulfur Batteries. In: 2015 IEEE Energy Conversion Congress and Exposition (ECCE). Montreal: IEEE, 2015, pp. 1375-1381. DOI 10.1109/ECCE.2015.7309853.
KNAP V., D.-I. STROE, R. TEODORESCU, M. SWIERCZYNSKI and T. STANCIU. Comparison of Parametrization Techniques for an Electrical Circuit Model of Lithium-Sulfur Batteries. In: 2015 IEEE 13th International Conference on Industrial Informatics (INDIN). Cambridge: IEEE, 2015, pp. 1278-1283. DOI 10.1109/INDIN.2015.7281919.
PROPP, K., M. MARINESCU, D.J. AUGER, L. O'NEILL, A. FOTOUHI, K. SOMASUNDARAM, G.J. OFFER, G. MINTON, S. LONGO, M. WILD and V. KNAP. Multi-Temperature State-Dependent Equivalent Circuit Discharge Model for Lithium-Sulfur Batteries. Journal of Power Sources, 2016, 328, pp. 289-299. DOI 10.1016/j.jpowsour.2016.07.090.
STROE, D.-I., V. KNAP, M. SWIERCZYNSKI and E. SCHALTZ. Electric Circuit Modeling of Lithium-Sulfur Batteries During Discharging State. In: 2017 IEEE Energy Conversion Congress and Exposition (ECCE). Cincinnati: IEEE, 2017, pp. 1024-1029. DOI 10.1109/ECCE.2017.8095899.
LI, G. and S. LI. Physics-Based CFD Simulation of Lithium-Ion Battery under the FUDS Driving Cycle. ECS Transactions, 2015, 64(33), pp. 1-14. DOI 10.1149/06433.0001ecst.
JUNG, S. and D. KANG. Multi-Dimensional Modeling of Large-Scale Lithium-Ion Batteries. Journal of Power Sources, 2014, 248, pp. 498-509. DOI 10.1016/j.jpowsour.2013.09.103.
YAZDANPOUR, M., P. TAHERI, A. MANSOURI and B. SCHWEITZER. A Circuit-Based Approach for Electro-Thermal Modeling of Lithium-Ion Batteries. In: 2016 32nd Thermal Measurement, Modeling & Management Symposium (SEMI-THERM). San Jose: IEEE, 2016, pp. 113-127. DOI 10.1109/SEMI-THERM.2016.7458455.
CHEN, M. and G.A. RINCON-MORA. Accurate Electrical Battery Model Capable of Predicting Runtime and I–V Performance. IEEE Transactions on Energy Conversion, 2006, 21(2), pp. 504-511. DOI 10.1109/TEC.2006.874229.
VYROUBAL, P. and T. KAZDA. Equivalent Circuit Model Parameters Extraction for Lithium Ion Batteries Using Electrochemical Impedance Spectroscopy. Journal of Energy Storage, 2018, 15, pp. 23-31. DOI 10.1016/j.est.2017.10.019.
SØRENSEN, K., N. HOUBAK and T. CONDRA. Solving Differential–Algebraic Equation Systems by Means of Index Reduction Methodology. Simulation Modelling Practice and Theory, 2006, 14(3), pp. 224-236. DOI 10.1016/j.simpat.2005.05.002.
SHAMPINE, L.F. and M.W. REICHELT. The MATLAB ODE Suite. SIAM Journal on Scientific Computing, 1997, 18(1), pp. 1-22. DOI 10.1137/S1064827594276424.
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