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Develop a micro grid control platform for sustainable energy management in distribution network

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dc.contributor.author Attanayaka, AMS
dc.contributor.author Jeewandara, JMDS
dc.contributor.author Karunadasa, JP
dc.contributor.author Hemapala, KTMU
dc.date.accessioned 2024-01-24T04:38:27Z
dc.date.available 2024-01-24T04:38:27Z
dc.date.issued 2018
dc.identifier.uri http://dl.lib.uom.lk/handle/123/22108
dc.description Following papers were published based on the results of this research project. 1. A.M.S.M.H.S.Attanayaka, J.P.Karunadasa, K.T.M.U.Hemapala. Estimation of state of charge for lithium-ion batteries - A Review[J]. AIMS Energy, 2019, 7(2): 186-210. doi: 10.3934/energy.2019.2.186 2. Attanayaka, A. M. S., Karunadasa, J. P., & Hemapala, K. T. (2021). Comprehensive electro‐thermal battery‐model for Li‐ion batteries in microgrid applications. Energy Storage, 3(3), e230. 3.J. M. D. S. Jeewandara, J. P. Karunadasa and K. T. M. U. Hemapala, "SOC Level Estimation of Lithium-ion Battery Based on Time Series Forecasting Algorithms for Battery Management System," 2021 3rd International Conference on Electrical Engineering (EECon), 2021, pp. 43-49, doi: 10.1109/EECon52960.2021.9580869. 4.J. M. D. S. Jeewandara, J. P. Karunadasa and K. T. M. U. Hemapala, "Comprehensive Study of Kalman Filter Based State of Charge Estimation Method for Battery Energy Management System in Microgrid," 2021 International Conference on Electrical, Computer, Communications and Mechatronics Engineering (ICECCME), 2021, pp. 01-06, doi: 10.1109/ICECCME52200.2021.9590949. en_US
dc.description.abstract The Senate Research Committee (SRC) promotes research by giving funding for research. In addition to the monthly stipend payment, the allocated payments for publications, hardware purchasing, and transportation is highly imperative to achieve the proposed objectives successfully within the time duration. Moreover, guidance of the supervisor who provided the SRC grant for the research is also essential factor to meet the requirements of the research. Microgrids and Battery Energy Storage Systems play a major role in the sustainable and clean energy sector. In this study, an accurate battery model is developed which can represent the electrical and the thermal behavior of the battery and all the battery parameters are investigated experimentally by implementing a test bench for the proposed model and moreover, each of the parameters is validated theoretically by developing a MATLAB simulation. To improve the accuracy of the battery parametrization, battery state of charge (SOC) level is estimated via machine learning algorithms. According to the results, the accuracy of the comprehensive electro-thermal battery model based on electrical and thermal parameters is at a satisfactory level and proves that designing such a model that achieves excellent accuracy and realistic behavior in real-time platform simulators. There are six different time series models are used to estimate the SOC level and according to the performance, auto regressive (AR) model and seasonal auto regressive integrated moving average (SARIMA) models are the best machine learning models for SOC level estimation when battery parametrization. en_US
dc.description.sponsorship Senate Research Committee en_US
dc.language.iso en en_US
dc.subject SUSTAINABLE ENERGY MANAGEMENT en_US
dc.subject MICRO GRID en_US
dc.subject BATTERY MODEL en_US
dc.subject ELECTRICAL ENGINEERING -Research en_US
dc.subject SENATE RESEARCH COMMITTEE – Research Report en_US
dc.title Develop a micro grid control platform for sustainable energy management in distribution network en_US
dc.type SRC-Report en_US
dc.identifier.department Department of Electrical Engineering en_US
dc.identifier.accno SRC175 en_US
dc.identifier.year 2018 en_US
dc.identifier.srgno SRC/LT/2018/15 en_US


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