Review of fast charging strategies for lithium-ion battery systems and their applicability for battery electric vehicles
暂无分享,去创建一个
A. Jossen | M. Lienkamp | Leo Wildfeuer | Nikolaos Wassiliadis | A. Frank | Jakob F. Schneider | Xue Lin
[1] Torsten Wik,et al. Electrochemical Model-Based Fast Charging: Physical Constraint-Triggered PI Control , 2021, IEEE Transactions on Energy Conversion.
[2] M. Lienkamp,et al. Experimental investigation of the influence of electrical contact resistance on lithium-ion battery testing for fast-charge applications , 2021, Applied Energy.
[3] Shichun Yang,et al. Minimum lithium plating overpotential control based charging strategy for parallel battery module prevents side reactions , 2021 .
[4] Mohamad Hanif Md Saad,et al. Intelligent algorithms and control strategies for battery management system in electric vehicles: Progress, challenges and future outlook , 2021 .
[5] M. Kurrat,et al. Fast charging lithium-ion battery formation based on simulations with an electrode equivalent circuit model , 2021 .
[6] Xuning Feng,et al. Mechanism, modeling, detection, and prevention of the internal short circuit in lithium-ion batteries: Recent advances and perspectives , 2021 .
[7] Simon V. Erhard,et al. Anode Potential Estimation in Lithium-Ion Batteries Using Data-Driven Models for Online Applications , 2021 .
[8] Markus Lienkamp,et al. An Overview of Parameter and Cost for Battery Electric Vehicles , 2021 .
[9] Haifeng Dai,et al. Lithium plating on the anode for lithium-ion batteries during long-term low temperature cycling , 2021 .
[10] M. Ouyang,et al. Lithium‐plating‐free fast charging of large‐format lithium‐ion batteries with reference electrodes , 2021, International Journal of Energy Research.
[11] Zhixing Wang,et al. Quantifying the temperature distribution and thermal characteristics of a 4.35 V LiCoO2/graphite pouch cell by modeling and experiments , 2021 .
[12] D. Abraham,et al. Fast Charging of Li-Ion Cells: Part V. Design and Demonstration of Protocols to Avoid Li-Plating , 2021 .
[13] S. Choe,et al. Optimal Fast Charging Method for a Large-Format Lithium-Ion Battery Based on Nonlinear Model Predictive Control and Reduced Order Electrochemical Model , 2021 .
[14] Wolfgang Ketter,et al. A survey-based assessment of how existing and potential electric vehicle owners perceive range anxiety , 2020 .
[15] Xuning Feng,et al. Challenges and opportunities toward fast-charging of lithium-ion batteries , 2020 .
[16] I. Bloom,et al. Fast Charge-Driven Li Plating on Anode and Structural Degradation of Cathode , 2020 .
[17] Zonghai Chen,et al. A comprehensive review of battery modeling and state estimation approaches for advanced battery management systems , 2020 .
[18] Andrew M. Colclasure,et al. Fast Charging of Li-Ion Cells: Part IV. Temperature Effects and “Safe Lines” to Avoid Lithium Plating , 2020 .
[19] Simon V. Erhard,et al. Impact of Electrode and Cell Design on Fast Charging Capabilities of Cylindrical Lithium-Ion Batteries , 2020 .
[20] D. Sauer,et al. Uncertainty-aware state estimation for electrochemical model-based fast charging control of lithium-ion batteries , 2020 .
[21] A. Kwade,et al. Fast-Charging of Automotive Lithium-Ion Cells: In-Situ Lithium-Plating Detection and Comparison of Different Cell Designs , 2020 .
[22] S. Zhang. Challenges and Strategies for Fast Charge of Li‐Ion Batteries , 2020 .
[23] Shengbo Zhang,et al. Identifying rate limitation and a guide to design of fast‐charging Li‐ion battery , 2020 .
[24] Song-Yul Choe,et al. Actively temperature controlled health-aware fast charging method for lithium-ion battery using nonlinear model predictive control , 2020 .
[25] A. Kwade,et al. Aging‐Optimized Fast Charging of Lithium Ion Cells Based on Three‐Electrode Cell Measurements , 2020 .
[26] L. Hovestadt,et al. Investigation of Temperature and Pressure Behaviour of Constrained Lithium Ion Cell under Lithium Plating Conditions , 2020 .
[27] Chang-wan Kim,et al. Thermal behaviors analysis of 55 Ah large-format lithium-ion pouch cells with different cell aspect ratios, tab locations, and C-rates , 2020 .
[28] Richard D. Braatz,et al. Real-time Nonlinear Model Predictive Control (NMPC) Strategies using Physics-Based Models for Advanced Lithium-ion Battery Management System (BMS) , 2020 .
[29] Xiaosong Hu,et al. Battery warm-up methodologies at subzero temperatures for automotive applications: Recent advances and perspectives , 2020, Progress in Energy and Combustion Science.
[30] M. Ozkan,et al. Adaptive fast charging methodology for commercial Li‐ion batteries based on the internal resistance spectrum , 2020, Energy Storage.
[31] Stefano Ermon,et al. Closed-loop optimization of fast-charging protocols for batteries with machine learning , 2020, Nature.
[32] D. Abraham,et al. Fast Charging of Li-Ion Cells: Part III. Relaxation Dynamics and Trap-Controlled Lithium Ion Transport , 2020 .
[33] Jianqiu Li,et al. Impact of high-power charging on the durability and safety of lithium batteries used in long-range battery electric vehicles , 2019 .
[34] Peng Zhao,et al. Fast charging optimization for lithium-ion batteries based on dynamic programming algorithm and electrochemical-thermal-capacity fade coupled model , 2019, Journal of Power Sources.
[35] Hong Zhao,et al. Challenges of Fast Charging for Electric Vehicles and the Role of Red Phosphorous as Anode Material: Review , 2019, Energies.
[36] Song-Yul Choe,et al. Fast and safe charging method suppressing side reaction and lithium deposition reaction in lithium ion battery , 2019, Journal of Power Sources.
[37] D. Abraham,et al. Fast Charging of Li-Ion Cells: Part II. Nonlinear Contributions to Cell and Electrode Polarization , 2019, Journal of The Electrochemical Society.
[38] Richard D. Braatz,et al. Optimal Charging of an Electric Vehicle Battery Pack: A Real-Time Sensitivity-Based MPC approach , 2019, ArXiv.
[39] Xuning Feng,et al. Lithium-ion battery fast charging: A review , 2019, eTransportation.
[40] Xianke Lin,et al. A framework for charging strategy optimization using a physics-based battery model , 2019, Journal of Applied Electrochemistry.
[41] Dirk Uwe Sauer,et al. Fast charging of an electric vehicle lithium-ion battery at the limit of the lithium deposition process , 2019, Journal of Power Sources.
[42] Xianke Lin. Real-Time Prediction of Anode Potential in Li-Ion Batteries Using Long Short-Term Neural Networks for Lithium Plating Prevention , 2019, Journal of The Electrochemical Society.
[43] Yi Cui,et al. Challenges and opportunities towards fast-charging battery materials , 2019, Nature Energy.
[44] Song-Yul Choe,et al. New fast charging method of lithium-ion batteries based on a reduced order electrochemical model considering side reaction , 2019, Journal of Power Sources.
[45] Pontus Svens,et al. Fast-charging effects on ageing for energy-optimized automotive LiNi1/3Mn1/3Co1/3O2/graphite prismatic lithium-ion cells , 2019, Journal of Power Sources.
[46] Jun Li,et al. Fast lithium growth and short circuit induced by localized-temperature hotspots in lithium batteries , 2019, Nature Communications.
[47] Marco-Tulio F. Rodrigues,et al. Fast Charging of Li-Ion Cells: Part I. Using Li/Cu Reference Electrodes to Probe Individual Electrode Potentials , 2019, Journal of The Electrochemical Society.
[48] Kristen A. Severson,et al. Data-driven prediction of battery cycle life before capacity degradation , 2019, Nature Energy.
[49] Jun Yang,et al. Classification and Review of the Charging Strategies for Commercial Lithium-Ion Batteries , 2019, IEEE Access.
[50] Gregory J. Offer,et al. How Observable Is Lithium Plating? Differential Voltage Analysis to Identify and Quantify Lithium Plating Following Fast Charging of Cold Lithium-Ion Batteries , 2019, Journal of The Electrochemical Society.
[51] S. Choi,et al. A physics-based distributed-parameter equivalent circuit model for lithium-ion batteries , 2019, Electrochimica Acta.
[52] Andreas Jossen,et al. Modeling of lithium plating and lithium stripping in lithium-ion batteries , 2019, Journal of Power Sources.
[53] Sheldon S. Williamson,et al. A Closed-Loop Constant-Temperature Constant-Voltage Charging Technique to Reduce Charge Time of Lithium-Ion Batteries , 2019, IEEE Transactions on Industrial Electronics.
[54] Dirk Uwe Sauer,et al. Full Cell Parameterization of a High-Power Lithium-Ion Battery for a Physico-Chemical Model: Part I. Physical and Electrochemical Parameters , 2018 .
[55] Xia Wang,et al. Modeling the effect of two-stage fast charging protocol on thermal behavior and charging energy efficiency of lithium-ion batteries , 2018, Journal of Energy Storage.
[56] Ilias Belharouak,et al. Identifying the limiting electrode in lithium ion batteries for extreme fast charging , 2018, Electrochemistry Communications.
[57] Yutaka Motoaki,et al. Empirical analysis of electric vehicle fast charging under cold temperatures , 2018, Energy Policy.
[58] Hao Mu,et al. Research on the Battery Charging Strategy With Charging and Temperature Rising Control Awareness , 2018, IEEE Access.
[59] Bill J. Van Heyst,et al. A comprehensive review on a passive (phase change materials) and an active (thermoelectric cooler) battery thermal management system and their limitations , 2018, Journal of Power Sources.
[60] Gyujin Jung,et al. Lithium intercalated graphite with preformed passivation layer as superior anode for Lithium ion batteries , 2018, Applied Surface Science.
[61] Chao-Yang Wang,et al. Understanding the trilemma of fast charging, energy density and cycle life of lithium-ion batteries , 2018, Journal of Power Sources.
[62] Xianke Lin,et al. Health conscious fast charging of Li-ion batteries via a single particle model with aging mechanisms , 2018, Journal of Power Sources.
[63] Marius Bauer,et al. Fast charging of lithium-ion cells: Identification of aging-minimal current profiles using a design of experiment approach and a mechanistic degradation analysis , 2018, Journal of Energy Storage.
[64] Chien-Hsing Lee,et al. Implementation of an SOC-based four-stage constant current charger for Li-ion batteries , 2018, Journal of Energy Storage.
[65] Torsten Wik,et al. Electrochemical Estimation and Control for Lithium-Ion Battery Health-Aware Fast Charging , 2018, IEEE Transactions on Industrial Electronics.
[66] Simon V. Erhard,et al. State estimation of lithium-ion cells using a physicochemical model based extended Kalman filter , 2018, Applied Energy.
[67] Markus Lienkamp,et al. Parameter variations within Li-Ion battery packs – Theoretical investigations and experimental quantification , 2018, Journal of Energy Storage.
[68] Harald Scholz,et al. Evaluation of Fast Charging Efficiency under Extreme Temperatures , 2018, Energies.
[69] Qingsong Wang,et al. An optimal multistage charge strategy for commercial lithium ion batteries , 2018 .
[70] Andreas Jossen,et al. Optimum fast charging of lithium-ion pouch cells based on local volume expansion criteria , 2018, Journal of Power Sources.
[71] Jiangfeng Zhang,et al. State-of-Power Estimation of Li-Ion Batteries Considering the Battery Surface Temperature , 2018, Energy Technology.
[72] Andrew Cruden,et al. Electric vehicle fast charging station usage and power requirements , 2018, Energy.
[73] M. Wohlfahrt‐Mehrens,et al. Li plating as unwanted side reaction in commercial Li-ion cells - A review , 2018 .
[74] Ricardo Martinez-Botas,et al. An easy-to-parameterise physics-informed battery model and its application towards lithium-ion battery cell design, diagnosis, and degradation , 2018 .
[75] P. Ajayan,et al. High-temperature solid electrolyte interphases (SEI) in graphite electrodes , 2018 .
[76] Bor Yann Liaw,et al. Fast charge implications: Pack and cell analysis and comparison , 2018 .
[77] Edgar Sánchez-Sinencio,et al. Search for Optimal Pulse Charging Parameters for Li-Ion Polymer Batteries Using Taguchi Orthogonal Arrays , 2018, IEEE Transactions on Industrial Electronics.
[78] Rohit Bhagat,et al. Understanding the limits of rapid charging using instrumented commercial 18650 high-energy Li-ion cells , 2018 .
[79] Joeri Van Mierlo,et al. Fast-charging investigation on high-power and high-energy density pouch cells with 3D-thermal model development , 2018 .
[80] Xiaolin Tang,et al. Electrothermal dynamics-conscious lithium-ion battery cell-level charging management via state-monitored predictive control , 2017 .
[81] H. Gasteiger,et al. Quantitative and time-resolved detection of lithium plating on graphite anodes in lithium ion batteries , 2017 .
[82] James Francfort,et al. Enabling fast charging – Battery thermal considerations , 2017 .
[83] Lei Cao,et al. A review on battery thermal management in electric vehicle application , 2017 .
[84] Richard Barney Carlson,et al. Enabling fast charging – A battery technology gap assessment , 2017 .
[85] Eric J. Dufek,et al. Enabling fast charging – Introduction and overview , 2017 .
[86] Richard Barney Carlson,et al. Enabling fast charging – Vehicle considerations , 2017 .
[87] Richard Barney Carlson,et al. Enabling fast charging - Infrastructure and economic considerations , 2017 .
[88] Jianqiu Li,et al. Non-destructive fast charging algorithm of lithium-ion batteries based on the control-oriented electrochemical model , 2017 .
[89] Göran Lindbergh,et al. Fast-charging to a partial state of charge in lithium-ion batteries: A comparative ageing study , 2017 .
[90] Siamak Farhad,et al. Heat generation in lithium-ion batteries with different nominal capacities and chemistries , 2017 .
[91] Chaoyang Wang,et al. Modeling of lithium plating induced aging of lithium-ion batteries: Transition from linear to nonlinear aging , 2017 .
[92] Thomas R. B. Grandjean,et al. Large format lithium ion pouch cell full thermal characterisation for improved electric vehicle thermal management , 2017 .
[93] Xiaosong Hu,et al. Charging optimization in lithium-ion batteries based on temperature rise and charge time , 2017 .
[94] Xiaosong Hu,et al. Optimal Charging of Li-Ion Batteries With Coupled Electro-Thermal-Aging Dynamics , 2017, IEEE Transactions on Vehicular Technology.
[95] P. Bruce,et al. Degradation diagnostics for lithium ion cells , 2017 .
[96] Joeri Van Mierlo,et al. Influence analysis of static and dynamic fast-charging current profiles on ageing performance of commercial lithium-ion batteries , 2017 .
[97] Yann Bultel,et al. Fast-charging of lithium iron phosphate battery with ohmic-drop compensation method , 2016 .
[98] Andreas Jossen,et al. Multi-directional laser scanning as innovative method to detect local cell damage during fast charging of lithium-ion cells , 2016 .
[99] Geping Yin,et al. Understanding undesirable anode lithium plating issues in lithium-ion batteries , 2016 .
[100] Debasish Mohanty,et al. The state of understanding of the lithium-ion-battery graphite solid electrolyte interphase (SEI) and its relationship to formation cycling , 2016 .
[101] Arnulf Latz,et al. Influence of local lithium metal deposition in 3D microstructures on local and global behavior of Lithium-ion batteries , 2016 .
[102] Sohel Anwar,et al. Electrochemical model based charge optimization for lithium-ion batteries , 2016 .
[103] Andreas Jossen,et al. Charging protocols for lithium-ion batteries and their impact on cycle life—An experimental study with different 18650 high-power cells , 2016 .
[104] Simon F. Schuster,et al. Nonlinear aging of cylindrical lithium-ion cells linked to heterogeneous compression , 2016 .
[105] Thomas Waldmann,et al. Optimization of Charging Strategy by Prevention of Lithium Deposition on Anodes in high-energy Lithium-ion Batteries – Electrochemical Experiments , 2015 .
[106] K. Jalkanen,et al. Cycle aging of commercial NMC/graphite pouch cells at different temperatures , 2015 .
[107] Joeri Van Mierlo,et al. Lithium-ion batteries: Evaluation study of different charging methodologies based on aging process , 2015 .
[108] Michael A. Danzer,et al. Lithium plating in a commercial lithium-ion battery - A low-temperature aging study , 2015 .
[109] Bor Yann Liaw,et al. Optimal charging method for lithium ion batteries using a universal voltage protocol accommodating aging , 2015 .
[110] M. Wohlfahrt‐Mehrens,et al. Temperature dependent ageing mechanisms in Lithium-ion batteries – A Post-Mortem study , 2014 .
[111] Andreas Gruhle,et al. A new method for detecting lithium plating by measuring the cell thickness , 2014 .
[112] Christian Fleischer,et al. Critical review of the methods for monitoring of lithium-ion batteries in electric and hybrid vehicles , 2014 .
[113] Michael Buchholz,et al. Low-temperature charging of lithium-ion cells Part II: Model reduction and application , 2014 .
[114] B. Liaw,et al. A review of lithium deposition in lithium-ion and lithium metal secondary batteries , 2014 .
[115] W. Goddard,et al. Dynamics of Lithium Dendrite Growth and Inhibition: Pulse Charging Experiments and Monte Carlo Calculations. , 2014, The journal of physical chemistry letters.
[116] W. Bessler,et al. Low-temperature charging of lithium-ion cells part I: Electrochemical modeling and experimental investigation of degradation behavior , 2014 .
[117] Nigel P. Brandon,et al. Coupled thermal–electrochemical modelling of uneven heat generation in lithium-ion battery packs , 2013 .
[118] David Anseán,et al. Fast charging technique for high power lithium iron phosphate batteries: A cycle life analysis , 2013 .
[119] Chaoyang Wang,et al. Heating strategies for Li-ion batteries operated from subzero temperatures , 2013 .
[120] Song-Yul Choe,et al. Fast charging method based on estimation of ion concentrations using a reduced order of Electrochemical Thermal Model for lithium ion polymer battery , 2013, 2013 World Electric Vehicle Symposium and Exhibition (EVS27).
[121] F. Baronti,et al. Battery Management System: An Overview of Its Application in the Smart Grid and Electric Vehicles , 2013, IEEE Industrial Electronics Magazine.
[122] Thanh Tu Vo,et al. Charging algorithms of lithium-ion batteries: An overview , 2012, 2012 7th IEEE Conference on Industrial Electronics and Applications (ICIEA).
[123] Qingsong Wang,et al. Thermal runaway caused fire and explosion of lithium ion battery , 2012 .
[124] Randall Guensler,et al. Electric vehicles: How much range is required for a day’s driving? , 2011 .
[125] Rolf Findeisen,et al. Optimal charging strategies in lithium-ion battery , 2011, Proceedings of the 2011 American Control Conference.
[126] M. Dubarry,et al. Identifying battery aging mechanisms in large format Li ion cells , 2011 .
[127] Jasim Ahmed,et al. Algorithms for Advanced Battery-Management Systems , 2010, IEEE Control Systems.
[128] Dinh Vinh Do,et al. Thermal modeling of a cylindrical LiFePO4/graphite lithium-ion battery , 2010 .
[129] Anton Van der Ven,et al. Lithium Diffusion in Graphitic Carbon , 2010, 1108.0576.
[130] Shengbo Zhang. The effect of the charging protocol on the cycle life of a Li-ion battery , 2006 .
[131] Kang Xu,et al. Study of the charging process of a LiCoO2-based Li-ion battery , 2006 .
[132] T. Araki,et al. Thermal behavior of small lithium-ion battery during rapid charge and discharge cycles , 2006 .
[133] U. Landau,et al. Rapid Charging of Lithium-Ion Batteries Using Pulsed Currents A Theoretical Analysis , 2006 .
[134] M. Wohlfahrt‐Mehrens,et al. Ageing mechanisms in lithium-ion batteries , 2005 .
[135] J.H.G. Op het Veld,et al. Boostcharging Li-ion batteries: A challenging new charging concept , 2005 .
[136] Kang Xu,et al. Optimization of the forming conditions of the solid-state interface in the Li-ion batteries , 2004 .
[137] P. Kohl,et al. The effects of pulse charging on cycling characteristics of commercial lithium-ion batteries , 2001 .
[138] M. Verbrugge,et al. The effect of large negative potentials and overcharge on the electrochemical performance of lithiated carbon , 1997 .
[139] M. Doyle,et al. Modeling of Galvanostatic Charge and Discharge of the Lithium/Polymer/Insertion Cell , 1993 .
[140] Jeff Dahn,et al. Studies of Lithium Intercalation into Carbons Using Nonaqueous Electrochemical Cells , 1990 .
[141] John Newman,et al. A General Energy Balance for Battery Systems , 1984 .
[142] Jianqiu Li,et al. Investigation of Lithium Plating-Stripping Process in Li-Ion Batteries at Low Temperature Using an Electrochemical Model , 2018 .
[143] G. Blomgren. The development and future of lithium ion batteries , 2017 .
[144] Andreas Jossen,et al. Simulation and Measurement of the Current Density Distribution in Lithium-Ion Batteries by a Multi-Tab Cell Approach , 2017 .
[145] M. Wohlfahrt‐Mehrens,et al. Electrochemical, Post-Mortem, and ARC Analysis of Li-Ion Cell Safety in Second-Life Applications , 2017 .
[146] Thomas Waldmann,et al. Interplay of Operational Parameters on Lithium Deposition in Lithium-Ion Cells: Systematic Measurements with Reconstructed 3-Electrode Pouch Full Cells , 2016 .
[147] Thomas Schleid,et al. Lithium Plating on Graphite Negative Electrodes: Innovative Qualitative and Quantitative Investigation Methods , 2015 .
[148] Partha P. Mukherjee,et al. Analysis of the Implications of Rapid Charging on Lithium-Ion Battery Performance , 2015 .
[149] Michael A. Danzer,et al. Influence of Cell Design on Temperatures and Temperature Gradients in Lithium-Ion Cells: An In Operando Study , 2015 .
[150] S. Raël,et al. Physical characterization of the charging process of a Li-ion battery and prediction of Li plating by electrochemical modelling , 2014 .
[151] Tsair-Rong Chen,et al. Sinusoidal-Ripple-Current Charging Strategy and Optimal Charging Frequency Study for Li-Ion Batteries , 2013, IEEE Transactions on Industrial Electronics.