2018
DOI: 10.1177/0959651818774481
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Characterization of the degradation process of lithium-ion batteries when discharged at different current rates

Abstract: The use of energy storage devices, such as lithium-ion (Li-ion) batteries, has become popular in many different domains and applications. Hence, it is relatively easy to find literature associated with problems of battery state-of-charge estimation and energy autonomy prognostics. Despite this fact, the characterization of battery degradation processes is still a matter of ongoing research. Indeed, most battery degradation models solely consider operation under nominal (or strictly controlled) conditions, alth… Show more

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Cited by 15 publications
(13 citation statements)
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References 31 publications
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“…Analytical models proposed in the literature include numerous forms of relationships between capacity fade and number of cycles/time, such as linear (Belt, Utgikar, & Bloom, 2011), square-root (F. Yang, Song, Dong, & Tsui, 2019), power-law (Schmalstieg, Käbitz, Ecker, & Sauer, 2014;Han, Ouyang, Lu, & Li, 2014), exponential (X. Zhang, Miao, & Liu, 2017;Tang et al, 2019;Perez et al, 2018), polynomial (Micea, Ungurean, Cârstoiu, & Groza, 2011), sigmoid (Johnen et al, 2020) or a combination of these (Xing, Ma, Tsui, & Pecht, 2013). More complicated models also account for differences in C-rates and temperatures (Ji et al, 2020;Singh, Chen, Tan, & Huang, 2019).…”
Section: Empirical/analytical Modelsmentioning
confidence: 99%
“…Analytical models proposed in the literature include numerous forms of relationships between capacity fade and number of cycles/time, such as linear (Belt, Utgikar, & Bloom, 2011), square-root (F. Yang, Song, Dong, & Tsui, 2019), power-law (Schmalstieg, Käbitz, Ecker, & Sauer, 2014;Han, Ouyang, Lu, & Li, 2014), exponential (X. Zhang, Miao, & Liu, 2017;Tang et al, 2019;Perez et al, 2018), polynomial (Micea, Ungurean, Cârstoiu, & Groza, 2011), sigmoid (Johnen et al, 2020) or a combination of these (Xing, Ma, Tsui, & Pecht, 2013). More complicated models also account for differences in C-rates and temperatures (Ji et al, 2020;Singh, Chen, Tan, & Huang, 2019).…”
Section: Empirical/analytical Modelsmentioning
confidence: 99%
“…The problem of state measurement of LIBs has been widely studied, most notably for estimation of the battery state of charge (SoC), while literature pertaining to SoH estimation remains less prevalent. Focuses of recent works in the area of SoH estimation have included incremental capacity (IC)/differential voltage (DV) measurement, 19 Coulomb counting, 20 (dual) extended Kalman filters 21,22 or empirical health degradation models such as those developed by Perez et al 23 However, the bulk of literature pertaining to SoH estimation focuses on prognostics and health management of existing battery systems, 24 with less emphasis placed on end of life characterisation of batteries. Furthermore, a majority of SoH estimation works focus on single cells.…”
Section: Background and Related Workmentioning
confidence: 99%
“…The test bed is designed for accelerated battery degradation, and it contains several experimental indicators such as the power supply rate, battery voltage, battery amperage, battery temperature and also environmental temperature, and so on. 8 The test bed contains a single-board computer in order to control the experiment conditions. 9…”
Section: Description Of Li-ion Battery Nasa Benchmarkmentioning
confidence: 99%
“…Currently, most researches are focused on datadriven prognostics based on the sensor historical testing data, and applying this to battery RUL estimation. [6][7][8][9] In Cheng et al, 10 the Gauss-Hermite particle filter was used to define a new state to estimate accurately the capacity. Then, based on the estimates values, a numerical projection with a long horizon was used to project the capacity fade to the value of the total degradation and consequently to outline the corresponding time.…”
Section: Introductionmentioning
confidence: 99%