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Estimating battery lifetimes in Solar Home System design using a practical modelling methodology

dc.creatorNarayan, Nishant
dc.creatorPapakosta, Thekla
dc.creatorVega Garita, Víctor
dc.creatorQin, Zian
dc.creatorPopovic Gerber, Jelena
dc.creatorBauer, Pavol
dc.creatorZeman, Miroslav
dc.date.accessioned2023-11-21T16:41:14Z
dc.date.available2023-11-21T16:41:14Z
dc.date.issued2018-10-15
dc.description.abstractThe rapid increase in the adoption of Solar Home Systems (SHS) in recent times hopes to ameliorate the global problem of energy poverty. The battery is a vital but usually the most expensive part of an SHS; owing to the least lifetime among other SHS components, it is also the first to fail. Estimating battery lifetime is a critical task for SHS design. However, it is also a complex task due to the reliance on experimental data or modelling cell level electrochemical phenomena for specific battery technologies and application use-case. Another challenge is that the existing electrochemical models are not application-specific to Solar Home Systems. This paper presents a practical, non-empirical battery lifetime estimation methodology specific to the application and the available candidate battery choices. An application-specific SHS simulation is carried out, and the battery activity is analyzed. A practical dynamic battery lifetime estimation method is introduced, which captures the fading capacity of the battery dynamically through every micro-cycle. This method was compared with an overall non-empirical battery lifetime estimation method, and the dynamic lifetime estimation method was found to be more conservative but practical. Cyclic ageing of the battery was thus quantified and the relative lifetimes of 4 battery technologies are compared, viz. Lead-acid gel, Flooded lead-acid, Nickel-Cadmium (NiCd), and Lithium Iron Phosphate (LiFePO4) battery. For the same SHS use-case, State-of-Health (SOH) estimations from an empirical model for LiFePO4 is compared with those obtained from the described methodology, and the results are found to be within 2.8%. The relevance of this work in an SHS application is demonstrated through a delicate balance between battery sizing and lifetime. Based on the intended application and battery manufacturer’s data, the practical methodology described in this paper can potentially help SHS designers in estimating battery lifetimes and therefore making optimal SHS design choices.es_ES
dc.description.procedenceUCR::Vicerrectoría de Docencia::Ingeniería::Facultad de Ingeniería::Escuela de Ingeniería Eléctricaes_ES
dc.identifier.doi10.1016/j.apenergy.2018.06.152
dc.identifier.issn0306-2619
dc.identifier.issn1872-9118
dc.identifier.urihttps://hdl.handle.net/10669/90453
dc.language.isoenges_ES
dc.sourceApplied Energy, vol.228, pp.1629-1639es_ES
dc.subjectDynamic battery lifetime estimationes_ES
dc.subjectCyclic ageinges_ES
dc.subjectBattery lifetime modeles_ES
dc.subjectBattery sizinges_ES
dc.subjectSolar Home Systemses_ES
dc.titleEstimating battery lifetimes in Solar Home System design using a practical modelling methodologyes_ES
dc.typeartículo originales_ES

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