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http://dx.doi.org/10.33961/jecst.2022.00423

Compatibility of Lithium ion Phosphate Battery in Solar off Grid Application  

Lakshmanan, Sathishkumar (Advanced Battery Research Centre, Department of Chemistry, Karpagam Academy of Higher Education)
Vetrivel, Dhanapal (Advanced Battery Research Centre, Department of Chemistry, Karpagam Academy of Higher Education)
Subban, Ravi (Advanced Battery Research Centre, Department of Chemistry, Karpagam Academy of Higher Education)
R., Saratha (Department of Chemistry, Avinashilingam Institute for Home Science and Higher Education for Women)
Nanjan, Sugumaran (Advanced Battery Research Centre, Department of Chemistry, Karpagam Academy of Higher Education)
Publication Information
Journal of Electrochemical Science and Technology / v.13, no.4, 2022 , pp. 472-478 More about this Journal
Abstract
Solar energy harvesting is practiced by various nations for the purpose of energy security and environment preservation in order to reduce overdependence on oil. Converting solar energy into electrical energy through Photovoltaic (PV) module can take place either in on-grid or off-grid applications. In recent time Lithium battery is exhibiting its presence in on-grid applications but its role in off-grid application is rarely discussed in the literature. The preliminary capacity and Peukert's study indicated that the battery quality is good and can be subjected for life cycle test. The capacity of the battery was 10.82 Ah at 1 A discharge current and the slope of 1.0117 in the Peukert's study indicated the reaction is very fast and independent on rate of discharge. In this study Lithium Iron Phosphate battery (LFP) after initial characterization was subjected to life cycle test which is specific to solar off-grid application as defined in IEC standard. The battery has delivered just 6 endurance units at room temperature before its capacity reached 75% of rated value. The low life of LFP battery in off-grid application is discussed based on State of Charge (SOC) operating window. The battery was operated both in high and low SOC's in off-grid application and both are detrimental to life of lithium battery. High SOC operation resulted in cell-to-cell variation and low SOC operation resulted in lithium plating on negative electrode. It is suggested that to make it more suitable for off-grid applications the battery by default has to be overdesigned by nearly 40% of its rated capacity.
Keywords
LFP battery; Solar application; Life cycle; Low and high SOC;
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