Temple University. Libraries
A generalized form for frequency-response modeling of battery energy storage systems
Abstract
dc:description.abstractThe increasing reliance on rechargeable batteries necessitates advanced diagnostic tools. This thesis identifies and validates a generalized 14 parameter distributed equivalent circuit model (dECM) capable of describing the electrochemical impedance behavior of three commercial battery chemistries: a 1.5 Ah lithium-ion (LiFePO4), a 5 Ah lithium-ion (NMC811), and a 1.5 Ah sodium-ion (NaFePO4) cell. An extensive experimental protocol was executed, subjecting the cells to conditions including temperatures from −20°C to +60°C, states of charge from 0-100%, aging up to 280 cycles, and mechanical damage (indentation and bending). Through a systematic evaluation of fourteen candidate models, a single dECM, Model M11, was validated for both LFP and NMC811 cells, consistently achieving a goodness of fit (χ2) below 1.8×10−4 and parameter relative standard deviations below 20%. The robustness of this model provides strong evidence that a common, physics-informed framework can capture the fundamental electrochemical processes in different Li-ion systems. For the Na-ion batteries, this work established critical benchmarks, showing its impedance at 0% SOC is an order of magnitude higher than Li-ion and that its slower dynamics necessitate a six hour rest period for stable measurement. Mechanical failure analysis revealed its primary failure mode is separator breach, causing an internal short circuit at an indentation depth of 5.9-7.3 mm, preceding the point of maximum mechanical load, which consistently occurs around 7.3 mm. Analysis of the model parameters reveals specific trends indicative of the battery’s state, such as a consistent increase in charge transfer resistance with cycle aging and a sharp decrease in inductance at the onset of mechanical damage. These relationships can be integrated into advanced battery management systems to enable real time monitoring of both long term degradation for state of health estimation and issues related to cell safety.
Degree
thesis:*- Grantor dc:publisher
- Temple University. Libraries
- Year dc:date.issued
- 2025
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
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- Shaw, Alexa
- Advisors dc:contributor.advisor
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- Soudbakhsh, Damoon
- Sahraei, Elham
- Committee members dc:contributor.committeemember
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- Kiani, Mohammad F.
- Sayginer, Osman
Subjects
dc:subject × 3Rights
dc:rights- Statement dc:rights
-
- IN COPYRIGHT- This Rights Statement can be used for an Item that is in copyright. Using this statement implies that the organization making this Item available has determined that the Item is in copyright and either is the rights-holder, has obtained permission from the rights-holder(s) to make their Work(s) available, or makes the Item available under an exception or limitation to copyright (including Fair Use) that entitles it to make the Item available.
- Licence dc:rights.uri
- Language dc:language.iso
- eng
Identifiers
dc:identifier.*- Repository record dc:identifier.uri
- https://scholarshare.temple.edu/handle/20.500.12613/11530
- OAI identifier oai:identifier
- oai:scholarshare.temple.edu:20.500.12613/11530