Prospectives for the Use of Li-Ion Batteries in Hybrid Stand-Alone Power Sources
暂无分享,去创建一个
S. M. Khantimerov | Ranis Fatykhov | N. M. Suleimanov | S. Khantimerov | N. Suleimanov | R. Fatykhov
[1] Javad Mahmoudimehr,et al. Techno-economic role of PV tracking technology in a hybrid PV-hydroelectric standalone power system , 2018 .
[2] C. Ballif,et al. Economic viability for residential battery storage systems in grid-connected PV plants , 2017 .
[3] Jun Liu,et al. Electrochemical energy storage for green grid. , 2011, Chemical reviews.
[4] P. Mohanty,et al. Electricity access for geographically disadvantaged rural communities—technology and policy insights , 2004 .
[5] Chaoyang Wang,et al. Electrochemical Cycle-Life Characterization of High Energy Lithium-Ion Cells with Thick Li(Ni0.6Mn0.2Co0.2)O2 and Graphite Electrodes , 2017 .
[6] Da Deng,et al. Li‐ion batteries: basics, progress, and challenges , 2015 .
[7] Tao Ma,et al. Performance evaluation of a stand-alone photovoltaic system on an isolated island in Hong Kong , 2013 .
[8] S. C. Mullick,et al. Providing electricity access to remote areas in India: An approach towards identifying potential areas for decentralized electricity supply , 2008 .
[9] Kathryn R. Bullock. Lead Acid Battery Systems and Technology for Sustainable Energy , 2013 .
[10] John B Goodenough,et al. The Li-ion rechargeable battery: a perspective. , 2013, Journal of the American Chemical Society.
[11] Biju Shrestha,et al. Capacity Fade of 26650 Lithium-Ion Phosphate Batteries Considered for Use Within a Pulsed-Power System’s Prime Power Supply , 2015, IEEE Transactions on Plasma Science.
[12] Masaki Yoshio,et al. A Review of Positive Electrode Materials for Lithium-Ion Batteries , 2009 .
[13] Juan C. Vasquez,et al. Flat tie-line power scheduling control of grid-connected hybrid microgrids , 2018 .
[14] Li Yang,et al. A study on capacity fading of lithium-ion battery with manganese spinel positive electrode during cycling , 2006 .
[15] Jun Chen,et al. Understanding electrode materials of rechargeable lithium batteries via DFT calculations , 2013 .
[16] D. Depernet,et al. Online impedance spectroscopy of lead acid batteries for storage management of a standalone power plant , 2012 .
[17] José L. Bernal-Agustín,et al. Comparison of different lead–acid battery lifetime prediction models for use in simulation of stand-alone photovoltaic systems , 2014 .
[18] Ratna Dahiya,et al. Choice of battery energy storage for a hybrid renewable energy system , 2018, Turkish J. Electr. Eng. Comput. Sci..
[19] Jiong Jin,et al. Robust Adaptive Sliding-Mode Observer Using RBF Neural Network for Lithium-Ion Battery State of Charge Estimation in Electric Vehicles , 2016, IEEE Transactions on Vehicular Technology.
[20] M. Lacroix,et al. An Inverse Method for Estimating the Electrochemical Parameters of Lithium-Ion Batteries I. Methodology , 2016 .
[21] Jeffrey W. Fergus,et al. Recent developments in cathode materials for lithium ion batteries , 2010 .
[22] L. Lei,et al. Lead sulfate used as the positive active material of lead acid batteries , 2016, Journal of Solid State Electrochemistry.
[23] Hongxing Yang,et al. A feasibility study of a stand-alone hybrid solar–wind–battery system for a remote island , 2014 .
[24] Jiao Shanlin,et al. The Economic Analysis of Wind Solar Hybrid Power Generation System in Villa , 2009, 2009 International Conference on Energy and Environment Technology.
[25] M. Lacroix,et al. An Inverse Method for Estimating the Electrochemical Parameters of Lithium-Ion Batteries II: Implementation , 2017 .