Comparison of different lead–acid battery lifetime prediction models for use in simulation of stand-alone photovoltaic systems
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José L. Bernal-Agustín | Juan M. Lujano-Rojas | Rodolfo Dufo-López | J. Lujano-Rojas | R. Dufo-López | J. Bernal-Agustín
[1] P. Rüetschi,et al. Influence of Crystal Structure and Interparticle Contact on the Capacity of PbO2 Electrodes , 1992 .
[2] Orhan Ekren,et al. Size optimization of a PV/wind hybrid energy conversion system with battery storage using response surface methodology , 2008 .
[3] G. J. Rios-Moreno,et al. Optimal sizing of renewable hybrids energy systems: A review of methodologies , 2012 .
[4] E. Lorenzo,et al. A general battery model for PV system simulation , 1993 .
[5] Abdel-Karim Daud,et al. Design of isolated hybrid systems minimizing costs and pollutant emissions , 2012 .
[6] José Manuel Bravo,et al. Optimal sizing for UPS systems based on batteries and/or fuel cell , 2013 .
[7] Rodolfo Dufo-López,et al. Tecno-economic assessment of an off-grid PV-powered community kitchen for developing regions , 2012 .
[8] M. Tsubota,et al. Failure modes of valve-regulated lead/acid batteries , 1996 .
[9] Mohd Amran Mohd Radzi,et al. Multi-objective optimization of a stand-alone hybrid renewable energy system by using evolutionary algorithms: A review , 2012 .
[10] Rodolfo Dufo-López,et al. Design and control strategies of PV-Diesel systems using genetic algorithms , 2005 .
[11] José L. Bernal-Agustín,et al. Optimal sizing of small wind/battery systems considering the DC bus voltage stability effect on energy capture, wind speed variability, and load uncertainty , 2012 .
[12] Zhou Wei,et al. Optimal design and techno-economic analysis of a hybrid solar–wind power generation system , 2009 .
[13] C. M. Shepherd. Design of Primary and Secondary Cells II . An Equation Describing Battery Discharge , 1965 .
[14] Consolación Gil,et al. Optimization methods applied to renewable and sustainable energy: A review , 2011 .
[15] Moncef Jraidi,et al. A battery ageing model used in stand alone PV systems , 2002 .
[16] M. R. Rietveld,et al. A new method for estimating the regression coefficients in the formula relating solar radiation to sunshine , 1978 .
[17] Andreas Jossen,et al. Operating conditions of batteries in off-grid renewable energy systems , 2007 .
[18] Orhan Ekren,et al. Break-even analysis and size optimization of a PV/wind hybrid energy conversion system with battery storage - A case study , 2009 .
[19] James F. Manwell,et al. Lifetime Modelling of Lead Acid Batteries , 2005 .
[20] Sri Lanka,et al. A hybrid tool to combine multi-objective optimization and multi-criterion decision making in designing standalone hybrid energy systems , 2013 .
[21] Heinz Wenzl,et al. Life prediction of batteries for selecting the technically most suitable and cost effective battery , 2005 .
[22] D. Sauer,et al. Operation conditions of batteries in PV applications , 2004 .
[23] L. Bernal-Agust. Multi-objective design and control of hybrid systems minimizing costs and unmet load , 2009 .
[24] Orhan Ekren,et al. Size optimization of a PV/wind hybrid energy conversion system with battery storage using simulated annealing , 2010 .
[25] José L. Bernal-Agustín,et al. Influence of the Mathematical Models in the Design of PV- Diesel Systems , 2008 .
[26] Henrik W. Bindner,et al. Model prediction for ranking lead-acid batteries according to expected lifetime in renewable energy systems and autonomous power-supply systems , 2007 .
[27] José L. Bernal-Agustín,et al. Multi-objective optimization minimizing cost and life cycle emissions of stand-alone PV–wind–diesel systems with batteries storage , 2011 .
[28] Mohsen Kalantar,et al. Dynamic behavior of a stand-alone hybrid power generation system of wind turbine, microturbine, solar array and battery storage , 2010 .
[29] Darrell F. Socie,et al. Simple rainflow counting algorithms , 1982 .
[30] Murray Thomson,et al. Economic and environmental impact of lead-acid batteries in grid-connected domestic PV systems , 2013 .
[31] Santanu Bandyopadhyay,et al. Application of design space methodology for optimum sizing of wind–battery systems , 2009 .
[32] José L. Bernal-Agustín,et al. Simulation and optimization of stand-alone hybrid renewable energy systems , 2009 .
[33] P. Ruetschi. Aging mechanisms and service life of lead–acid batteries , 2004 .
[34] J. J. Lander. Further Studies on the Anodic Corrosion of Lead in H 2 SO 4 Solutions , 1956 .
[35] Orhan Ekren,et al. Simulation based size optimization of a PV/wind hybrid energy conversion system with battery storage under various load and auxiliary energy conditions , 2009 .
[36] Andreas Jossen,et al. The influence of different operating conditions, especially over-discharge, on the lifetime and performance of lead/acid batteries for photovoltaic systems , 1997 .
[37] P. T. Moseley,et al. Progress in overcoming the failure modes peculiar to VRLA batteries , 2003 .
[38] Tom E. Baldock,et al. Feasibility analysis of stand-alone renewable energy supply options for a large hotel , 2008 .
[39] James F. Manwell,et al. HYBRID2 - a versatile model of the performance of hybrid power systems , 1995 .
[40] F. Chenlo,et al. Lead/acid batteries for photovoltaic applications. Test results and modeling , 1994 .
[41] Santanu Bandyopadhyay,et al. Optimum sizing of wind-battery systems incorporating resource uncertainty , 2010 .
[42] Getachew Bekele,et al. Feasibility study for a standalone solar–wind-based hybrid energy system for application in Ethiopia , 2010 .
[43] C. Armenta-Deu,et al. Determination of an ageing factor for lead/acid batteries. 1. Kinetic aspects , 1996 .
[44] James F. Manwell,et al. LEAD-ACID-BATTERY STORAGE MODEL FOR HYBRID ENERGY-SYSTEMS , 1993 .
[45] B. Culpin,et al. Failure modes of lead/acid batteries☆ , 1991 .
[46] Heinz Wenzl,et al. Comparison of different approaches for lifetime prediction of electrochemical systems—Using lead-acid batteries as example , 2008 .
[47] K. Hollands,et al. A method to generate synthetic hourly solar radiation globally , 1990 .