Construction of electrochemical model for high C-rate conditions in lithium-ion battery based on experimental analogy method
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Limei Wang | Xiuliang Zhao | Ruochen Wang | Yingfeng Cai | Mengjie Jin | Xueqing Yan | Yubo Lian | Long Chen | S. Qiao
[1] Wei Zhang,et al. Low-temperature lithium-ion batteries: challenges and progress of surface/interface modifications for advanced performance. , 2022, Nanoscale.
[2] Badong Chen,et al. Robust state of charge estimation for Li-ion batteries based on cubature kalman filter with generalized maximum correntropy criterion , 2022, Energy.
[3] D. Stroe,et al. An improved feedforward-long short-term memory modeling method for the whole-life-cycle state of charge prediction of lithium-ion batteries considering current-voltage-temperature variation , 2022, Energy.
[4] Shunli Wang,et al. A novel fuzzy adaptive cubature Kalman filtering method for the state of charge and state of energy co-estimation of lithium-ion batteries , 2022, Electrochimica Acta.
[5] Y. Orikasa,et al. Multiscale and hierarchical reaction mechanism in a lithium-ion battery , 2022, Chemical Physics Reviews.
[6] Qingsong Wang,et al. Understanding of Li‐plating on graphite electrode: detection, quantification and mechanism revelation , 2021 .
[7] Mahesh Mynam,et al. Solvation shell dynamics explains charge transport characteristics of LIB electrolytes , 2021 .
[8] Amit Gupta,et al. An improved single-particle model with electrolyte dynamics for high current applications of lithium-ion cells , 2021 .
[9] Simona Onori,et al. Modeling degradation of Lithium-ion batteries for second-life applications: preliminary results , 2021, 2021 IEEE Conference on Control Technology and Applications (CCTA).
[10] U. Krewer,et al. Practical identifiability of electrochemical P2D models for lithium-ion batteries , 2021, Journal of Applied Electrochemistry.
[11] Chenghui Zhang,et al. Simplified electrochemical lithium-ion battery model with variable solid-phase diffusion and parameter identification over wide temperature range , 2021, Journal of Power Sources.
[12] Enlong Wang,et al. State of Charge Estimation for Lithium-Ion Battery Based on Improved Cubature Kalman Filter Algorithm , 2021, Automotive Innovation.
[13] C. Grey,et al. Operando optical tracking of single-particle ion dynamics in batteries , 2020, Nature.
[14] W. Zhuge,et al. Thermal Performance of a Micro Heat Pipe Array for Battery Thermal Management Under Special Vehicle-Operating Conditions , 2020, Automotive Innovation.
[15] Zonghai Chen,et al. A comprehensive review of battery modeling and state estimation approaches for advanced battery management systems , 2020 .
[16] M. Pecht,et al. An electrochemical model for high C-rate conditions in lithium-ion batteries , 2019, Journal of Power Sources.
[17] Changsheng Qiu,et al. The polarization characteristics of lithium-ion batteries under cyclic charge and discharge , 2019, Journal of Solid State Electrochemistry.
[18] Oliver Sawodny,et al. Empirical Li-ion aging model derived from single particle model , 2019, Journal of Energy Storage.
[19] Linlin Li,et al. An electrochemical model based degradation state identification method of Lithium-ion battery for all-climate electric vehicles application , 2018, Applied Energy.
[20] Jonghyun Park,et al. A Single Particle Model with Chemical/Mechanical Degradation Physics for Lithium Ion Battery State of Health (SOH) Estimation , 2018 .
[21] Azah Mohamed,et al. A review of lithium-ion battery state of charge estimation and management system in electric vehicle applications: Challenges and recommendations , 2017 .
[22] Marshall C. Smart,et al. Factors Limiting Li + Charge Transfer Kinetics in Li-Ion Batteries , 2017 .
[23] Zonghai Chen,et al. On-line remaining energy prediction: A case study in embedded battery management system ☆ , 2017 .
[24] Yan Zhu,et al. Investigation on Li-ion battery charging polarization characteristics and influence factors , 2016, Ionics.
[25] Jianqiu Li,et al. Simplification of physics-based electrochemical model for lithium ion battery on electric vehicle. Part II: Pseudo-two-dimensional model simplification and state of charge estimation , 2015 .
[26] Tanvir R. Tanim,et al. State of charge estimation of a lithium ion cell based on a temperature dependent and electrolyte enhanced single particle model , 2015 .
[27] Shizhao Xiong,et al. A new co-solvent for wide temperature lithium ion battery electrolytes: 2,2,2-Trifluoroethyl n-caproate , 2015 .
[28] Chao Lyu,et al. A new extension of physics-based single particle model for higher charge–discharge rates , 2013 .
[29] Lixin Wang,et al. An approximate solution for electrolyte concentration distribution in physics-based lithium-ion cell models , 2013, Microelectron. Reliab..
[30] Ralph E. White,et al. Extension of Physics-Based single Particle Model for Higher Charge-Discharge Rates , 2013 .
[31] Andrew Chemistruck,et al. One-dimensional physics-based reduced-order model of lithium-ion dynamics , 2012 .
[32] M. Verbrugge,et al. Intercalate Diffusion in Multiphase Electrode Materials and Application to Lithiated Graphite , 2012 .
[33] Ann Marie Sastry,et al. A review of conduction phenomena in Li-ion batteries , 2010 .
[34] Richard D. Braatz,et al. Modeling and Simulation of Lithium-Ion Batteries from a Systems Engineering Perspective , 2010 .
[35] V. Subramanian,et al. Efficient Reformulation of Solid-Phase Diffusion in Physics-Based Lithium-ion Battery Models , 2009, ECS Transactions.
[36] V. Subramanian,et al. Mathematical Model Reformulation for Lithium-Ion Battery Simulations: Galvanostatic Boundary Conditions , 2009 .
[37] Byoungwoo Kang,et al. Battery materials for ultrafast charging and discharging , 2009, Nature.
[38] J. Tarascon,et al. Comparison of Modeling Predictions with Experimental Data from Plastic Lithium Ion Cells , 1996 .
[39] M. Doyle,et al. Modeling of Galvanostatic Charge and Discharge of the Lithium/Polymer/Insertion Cell , 1993 .
[40] Zonghai Chen,et al. An improved single particle model for lithium-ion batteries based on main stress factor compensation , 2021 .
[41] Remi Petibon,et al. Effects of Electrolyte Additives and Solvents on Unwanted Lithium Plating in Lithium-Ion Cells , 2017 .
[42] R. B. Gopaluni,et al. LIONSIMBA: A Matlab Framework Based on a Finite Volume Model Suitable for Li-Ion Battery Design, Simulation, and Control , 2016 .
[43] Tanvir R. Tanim,et al. A Temperature Dependent, Single Particle, Lithium Ion Cell Model Including Electrolyte Diffusion , 2015 .
[44] Taeyoung Han,et al. Full-Range Simulation of a Commercial LiFePO4 Electrode Accounting for Bulk and Surface Effects: A Comparative Analysis , 2014 .
[45] Chao-Yang Wang,et al. Least Squares Galvanostatic Intermittent Titration Technique (LS-GITT) for Accurate Solid Phase Diffusivity Measurement , 2013 .
[46] Venkatasailanathan Ramadesigan,et al. Publisher's Note: Coordinate Transformation, Orthogonal Collocation, Model Reformulation and Simulation of Electrochemical-Thermal Behavior of Lithium-Ion Battery Stacks: [J. Electrochem. Soc., 158, A1461 (2011)] , 2012 .