Battery Capacity Estimation in Electric Vehicles
A special issue of Vehicles (ISSN 2624-8921).
Deadline for manuscript submissions: closed (30 April 2019) | Viewed by 392
Special Issue Editors
Interests: design and control of power converters used in photovoltaics and wind power systems; grid integration with wind power; medium-voltage converters; HVDC/FACTS; energy storage
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Special Issue Information
Dear Colleagues,
According to Bloomberg New Energy Finance, in excess of four million Electric Vehicles (EVs) will be sold worldwide by the end of 2018. The dominant battery technology is based on lithium-ion including, LFP, LTO, LCO, and NMC, but new technologies are emerging too, for example, Li-sulfur, solid-state, Li-air, sodium-ion. The battery capacity is a critical and fundamental parameter in accurate EV range prediction. In addition, the battery capacity is part of the State of Health (SOH) measurement and can predict the Remaining Useful Life (RUL). The capacity fade is closely related to the battery degradation process, which varies with the battery chemistry. Considering the existing computational power of BMS, usage of the capacity estimation methods based on observers has its limits. Moreover, the nonlinear model increases the complexity of estimation. The capacity prediction also relies on the reliable and accurate measurement from sensors. Accordingly, obtaining an accurate battery capacity estimation is still a challenge. This Special Issue focuses on recent research and progress on the battery capacity estimation methods in EV.
Prof. Dr. Remus Teodorescu
Mr. Jinhao Meng
Guest Editors
Manuscript Submission Information
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Keywords
- Nonlinear observers (e.g., Kalman filter, particle filter, sliding mode, h-infinity filter, …)
- Battery modelling (e.g., equivalent circuit model, electrochemical model, empirical model, …)
- Artificial intelligence (e.g., neural network, deep learning, …)
- Electrochemical Impedance Spectroscopy (EIS)
- Incremental Capacity Analysis (ICA)
- Differential Voltage Analysis (DVA)
- On-line models
- Off-line models (e.g. during charging)
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