Battery State Estimation -

Battery State Estimation

Methods and models

Shunli Wang (Herausgeber)

Buch | Hardcover
298 Seiten
2022
Institution of Engineering and Technology (Verlag)
978-1-83953-529-1 (ISBN)
143,40 inkl. MwSt
Batteries are vital for storing renewable energy for stationary and mobile applications. Managing batteries requires knowledge of parameters such as charge and power output. State estimation estimates such parameters using measurement and modelling; a process conveyed in this book through experimental results and verification.
Batteries are of vital importance for storing intermittent renewable energy for stationary and mobile applications. In order to charge the battery and maintain its capacity, the states of the battery - such as the current charge, safety and health, but also quantities that cannot be measured directly - need to be known to the battery management system. State estimation estimates the electrical state of a system by eliminating inaccuracies and errors from measurement data. Numerous methods and techniques are used for lithium-ion and other batteries. The various battery models seek to simplify the circuitry used in the battery management system.


This concise work captures the methods and techniques for state estimation needed to keep batteries reliable. The book focuses particularly on mechanisms, parameters and influencing factors. Chapters convey equivalent modelling and several Kalman filtering techniques, including adaptive extended Kalman filtering for multiple battery state estimation, dual extended Kalman filtering prediction for complex working conditions, and particle filtering of safety estimation considering the capacity fading effect.


This book is necessary reading for researchers in battery research and development, including battery management systems and related power electronics, for battery manufacturers, and for advanced students in power electronics.

Shunli Wang is a professor at Southwest University of Science and Technology, China, where he heads the New Energy Measurement and Control Research Team. His research focuses on modeling and state estimation research for batteries and multiple generation battery systems. He holds 30 patents, has published more than 100 papers, and won several awards.

Chapter 1: Introduction
Chapter 2: Mechanism and influencing factors of lithium-ion batteries
Chapter 3: Equivalent modeling, improvement, and state-space description
Chapter 4: Extended Kalman filtering and its extension
Chapter 5: Adaptive extended Kalman filtering for multiple battery state estimation
Chapter 6: Dual extended Kalman filtering prediction for complex working conditions
Chapter 7: Unscented particle filtering of safety estimation considering capacity fading effect

Erscheinungsdatum
Reihe/Serie Energy Engineering
Verlagsort Stevenage
Sprache englisch
Maße 156 x 234 mm
Themenwelt Technik Elektrotechnik / Energietechnik
Technik Fahrzeugbau / Schiffbau
ISBN-10 1-83953-529-6 / 1839535296
ISBN-13 978-1-83953-529-1 / 9781839535291
Zustand Neuware
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