Lifespan prediction of Li-ion batteries in electrical vehicles by applying coulombic efficiency: from anode material to battery cell to vehicle application
Literature Information
Yanfei Li, Xiaohua Jiang, Kw Xu
Coulombic efficiency (CE) is widely considered to be an important parameter for indicating the loss of reversibility of lithium, which can be used to reflect battery performance and safety to predict the lifespan in Li-ion battery research. However, the quantifiable relationship between CE and lifespan, as well as its application in lifespan prediction for real-world electrical vehicles (EV), are not fully understood. In this paper, the battery cycle degradation test is performed, which explores the close relationship between the CE and the cycle life through the study of an experimental cell with graphite anodes (AG) coated with different proportions of pitch-based carbon (PbC), indicating that a high CE is associated with a long battery life. Furthermore, the CE evolution is explored through cycling experiments of the standard cell under imitated real-world EV working conditions and the logarithmic relation with upper and lower branches between the CE and cycle number is constructed. Based on this relationship, a quantitative lifespan prediction method for EVs is proposed. It was found that the failure behavior of the degradation trend could be identified through the mass EVs operating data by using this method, and the false alarm for normal EVs is low, at only about 2% by cycle number, indicating that CE in EVs reflects the health status of lifespan (HSoL) of battery. Therefore, the detection method is helpful for predicting the cycle life and offers an early failure warning for battery management systems.
Related Literature
Paper-based nucleic acid amplification tests for point-of-care diagnostics
Navjot Kaur, Bhushan J. Toley
DOI: 10.1039/C7AN01943B
Metal ions induced secondary structure rearrangements: mechanically interlocked lasso vs. unthreaded branched-cyclic topoisomers
Kevin Jeanne Dit Fouque, Javier Moreno, Julian D. Hegemann, Séverine Zirah, Sylvie Rebuffat, Francisco Fernandez-Lima
DOI: 10.1039/C8AN00138C
Recent advances in nanomaterial-based electrochemical and optical sensing platforms for microRNA assays
Yi-Han Wang, Liu-Liu He, Ke-Jing Huang, Ying-Xu Chen, Shu-Yu Wang, Zhen-Hua Liu, Dan Li
DOI: 10.1039/C9AN00081J
Spectroelectrochemical study of the AMP-Ag+ and ATP-Ag+ complexes using silver mesh electrodes
Tano Patrice Fato, Li-Jun Zhao, Kouadio Fodjo Essy, Da-Wei Li, Yi-Tao Long
DOI: 10.1039/C8AN00097B
An ultrasensitive photoelectrochemical bioanalysis strategy for tumor markers based on the significantly enhanced signal of a bismuth oxyiodine microsphere/graphitic carbon nitride composite
Shurui Wang, Zhihui Dai
DOI: 10.1039/C8AN00118A
Noninvasive and prospective diagnosis of coronary heart disease with urine using surface-enhanced Raman spectroscopy
Huinan Yang, Chang Zhao, Rong Li, Chengxing Shen, Xiaoshu Cai, Li Sun, Chengfang Luo, Yuechao Yin
DOI: 10.1039/C7AN02022H
Capillary photoionization: interface for low flow rate liquid chromatography-mass spectrometry
Päivi Pöhö, Anu Vaikkinen, Markus Haapala, Petri Kylli, Risto Kostiainen
DOI: 10.1039/C9AN00258H
Printed low-cost microfluidic analytical devices based on a transparent substrate
Shogo Fujisaki, Hiroyuki Shibata, Kentaro Yamada, Koji Suzuki, Daniel Citterio
DOI: 10.1039/C8AN02304B
Exploring the potential of a urea derivative: an AIE-luminogen and its interaction with human serum albumin in aqueous medium
Senjuti Halder, Soham Samanta, Gopal Das
DOI: 10.1039/C9AN00102F
Simple preparation and highly selective detection of silver ions using an electrochemical sensor based on sulfur-doped graphene and a 3,3′,5,5′-tetramethylbenzidine composite modified electrode
Yuan Yu
DOI: 10.1039/C7AN02084H
You might also like
What precautions should be taken when handling lithium chloride hydrate (1:1:1) (CAS: 16712-20-2)?
When handling lithium chloride hydrate (1:1:1) (CAS: 16712-20-2), it is importan...
Is 4-(4H-1,2,4-Triazol-4-yl)piperidine (CAS: 690261-92-8) safe?
4-(4H-1,2,4-Triazol-4-yl)piperidine is generally considered safe for use in phar...
How should waste containing 1,3-Thiazole-2-carboxamide (CAS: 16733-85-0) be handled?
Waste containing 1,3-Thiazole-2-carboxamide (CAS: 16733-85-0) should be collecte...
What regulatory guidelines apply to 5-(Difluoromethyl)-2-fluorobenzonitrile (CAS: 934175-58-3)?
5-(Difluoromethyl)-2-fluorobenzonitrile (CAS: 934175-58-3) is subject to regulat...
How is Methyl 3-acetamido-2-thiophenecarboxylate (CAS: 22288-79-5) typically synthesized?
Methyl 3-acetamido-2-thiophenecarboxylate can be synthesized by the reaction of ...
What is 4-Isoquinolinecarbonitrile (CAS: 34846-65-6)?
4-Isoquinolinecarbonitrile is a chemical compound with the CAS number 34846-65-6...
How should Methyl 1H-1,2,3-triazole-4-carboxylate (CAS: 877309-59-6) be stored?
Store Methyl 1H-1,2,3-triazole-4-carboxylate (CAS: 877309-59-6) in a cool, dry p...
What regulatory guidelines apply to 6-Bromo[1,3]thiazolo[5,4-b]pyridin-2-amine (CAS: 1160791-13-8)?
6-Bromo[1,3]thiazolo[5,4-b]pyridin-2-amine (CAS: 1160791-13-8) is subject to the...
Is (2S,3S)-2-Ammonio-3-(3,4-dihydroxyphenyl)-3-hydroxypropanoate (CAS: 23651-95-8) safe?
(2S,3S)-2-Ammonio-3-(3,4-dihydroxyphenyl)-3-hydroxypropanoate (CAS: 23651-95-8) ...
What are the physical and chemical properties of 7-bromo-3-methyl-3,4-dihydroquinazolin-4-one (CAS: 1293987-84-4)?
7-Bromo-3-methyl-3,4-dihydroquinazolin-4-one is a solid with a crystalline form....















