Ultrasonic guided wave measurement and modeling analysis of the state of charge for lithium-ion battery
暂无分享,去创建一个
[1] Hanlei Sun,et al. A Review of SOH Prediction of Li-Ion Batteries Based on Data-Driven Algorithms , 2023, Energies.
[2] Licheng Wang,et al. Electrochemical Impedance Spectroscopy: A New Chapter in the Fast and Accurate Estimation of the State of Health for Lithium-Ion Batteries , 2023, Energies.
[3] Jindong Tian,et al. State estimation of a lithium-ion battery based on multi-feature indicators of ultrasonic guided waves , 2022, Journal of Energy Storage.
[4] Yanping Zheng,et al. State of charge estimation of lithium-ion battery based on improved forgetting factor recursive least squares-extended Kalman filter joint algorithm , 2022, Journal of Energy Storage.
[5] Licheng Wang,et al. Online estimation of SOH for lithium-ion battery based on SSA-Elman neural network , 2022, Protection and Control of Modern Power Systems.
[6] Jindong Tian,et al. State Characterization of Lithium-Ion Battery Based on Ultrasonic Guided Wave Scanning , 2022, Energies.
[7] N. Li,et al. Microstructure evolution of lithium-ion battery electrodes at different states of charge: Deep learning-based segmentation , 2022, Electrochemistry Communications.
[8] Jason B. Siegel,et al. Comparison of expansion and voltage differential indicators for battery capacity fade , 2022, Journal of Power Sources.
[9] He Cunfu,et al. Guided waves propagation in multi-layered porous materials by the global matrix method and Biot theory , 2021 .
[10] Xinyou Lin,et al. State of charge estimation with the adaptive unscented Kalman filter based on an accurate equivalent circuit model , 2021 .
[11] Wenfeng Hao,et al. State-of-charge and state-of-health estimation for lithium-ion battery using the direct wave signals of guided wave , 2021, Journal of Energy Storage.
[12] Le Yang,et al. Internal field study of 21700 battery based on long-life embedded wireless temperature sensor , 2021, Acta Mechanica Sinica.
[13] Yong Tian,et al. State-of-charge estimation tolerant of battery aging based on a physics-based model and an adaptive cubature Kalman filter , 2021 .
[14] Ying Luo,et al. Guided wave imaging of thin lithium-ion pouch cell using scanning laser Doppler vibrometer , 2021, Ionics.
[15] Yang Li,et al. Constrained Ensemble Kalman Filter for Distributed Electrochemical State Estimation of Lithium-Ion Batteries , 2021, IEEE Transactions on Industrial Informatics.
[16] M. Hagen,et al. In-operando Raman study of lithium plating on graphite electrodes of lithium ion batteries , 2020 .
[17] Wei-li Song,et al. In‐situ heat generation measurement of the anode and cathode in a single‐layer lithium ion battery cell , 2020, International Journal of Energy Research.
[18] P. Kubiak,et al. Lithium‐ion battery SOC/SOH adaptive estimation via simplified single particle model , 2020 .
[19] C. He,et al. Modeling guided wave propagation in multi-layered anisotropic composite laminates by state-vector formalism and the Legendre polynomials , 2019, Composite Structures.
[20] Honggang Li,et al. Numerical Simulation and Experimental Study of Fluid-Solid Coupling-Based Air-Coupled Ultrasonic Detection of Stomata Defect of Lithium-Ion Battery , 2019, Sensors.
[21] Andreas Jossen,et al. Modeling of lithium plating and lithium stripping in lithium-ion batteries , 2019, Journal of Power Sources.
[22] Fotis Kopsaftopoulos,et al. Estimating state of charge and health of lithium-ion batteries with guided waves using built-in piezoelectric sensors/actuators , 2018 .
[23] Bor Yann Liaw,et al. On state-of-charge determination for lithium-ion batteries , 2017 .
[24] Gerhard Sextl,et al. Probing lithium-ion batteries' state-of-charge using ultrasonic transmission – Concept and laboratory testing , 2017 .
[25] Mira Mitra,et al. Guided wave based structural health monitoring: A review , 2016 .
[26] Jing Zhang,et al. Ab initio study of anisotropic mechanical properties of LiCoO2 during lithium intercalation and deintercalation process , 2015 .
[27] Daniel A. Steingart,et al. Electrochemical-acoustic time of flight: in operando correlation of physical dynamics with battery charge and health , 2015 .
[28] Guo Wei,et al. Online Estimation of Model Parameters and State of Charge of LiFePO4 Batteries Using a Novel Open-Circuit Voltage at Various Ambient Temperatures , 2015 .
[29] Victor Giurgiutiu,et al. Stiffness Transfer Matrix Method (STMM) for stable dispersion curves solution in anisotropic composites , 2014, Smart Structures.
[30] Michael Osterman,et al. Health monitoring of lithium-ion batteries , 2013, 2013 IEEE Symposium on Product Compliance Engineering (ISPCE).
[31] Lijun Wu,et al. Combining In Situ Synchrotron X‐Ray Diffraction and Absorption Techniques with Transmission Electron Microscopy to Study the Origin of Thermal Instability in Overcharged Cathode Materials for Lithium‐Ion Batteries , 2013 .
[32] Xiaosong Huang,et al. Modeling stresses in the separator of a pouch lithium-ion cell , 2011 .
[33] Neeraj Sharma,et al. Structural changes in a commercial lithium-ion battery during electrochemical cycling: An in situ neutron diffraction study , 2010 .
[34] Daniel A. Steingart,et al. A Lateral Microfluidic Cell for Imaging Electrodeposited Zinc near the Shorting Condition , 2010 .
[35] Yue Qi,et al. Threefold Increase in the Young’s Modulus of Graphite Negative Electrode during Lithium Intercalation , 2010 .
[36] Stephen J. Harris,et al. In Situ Observation of Strains during Lithiation of a Graphite Electrode , 2010 .
[37] Sébastien Martinet,et al. Lithium-ion batteries with high charge rate capacity: Influence of the porous separator , 2007 .
[38] J. Lefebvre,et al. Legendre polynomial approach for modeling free-ultrasonic waves in multilayered plates , 1999 .
[39] M.J.S. Lowe,et al. Matrix techniques for modeling ultrasonic waves in multilayered media , 1995, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[40] J. Dahn,et al. Electrochemical and In Situ X‐Ray Diffraction Studies of Lithium Intercalation in Li x CoO2 , 1992 .
[41] Robert D. Stoll,et al. Reflection of acoustic waves at a water–sediment interface , 1981 .
[42] M. Biot. Theory of Propagation of Elastic Waves in a Fluid‐Saturated Porous Solid. I. Low‐Frequency Range , 1956 .
[43] M. Biot. Theory of Propagation of Elastic Waves in a Fluid-Saturated Porous Solid. II. Higher Frequency Range , 1956 .