Operational reliability and economy evaluation of reusing retired batteries in composite power systems
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Le Xie | Xiaolin Chen | Junjie Tang | Wenyuan Li | Le Xie | Wenyuan Li | Junjie Tang | Xiaolin Chen
[1] Wang Peng,et al. Impact of Energy Storage and Variability of PV on Power System Reliability , 2013 .
[2] Ralph E. White,et al. Analysis of capacity fade in a lithium ion battery , 2005 .
[3] R. Spotnitz. Simulation of capacity fade in lithium-ion batteries , 2003 .
[4] Thomas H. Bradley,et al. Investigation of battery end-of-life conditions for plug-in hybrid electric vehicles , 2011 .
[5] Wenyuan Li. Risk assessment of power systems , 2014 .
[6] Ira Bloom,et al. Statistical methodology for predicting the life of lithium-ion cells via accelerated degradation testing , 2008 .
[7] Heinz Wenzl,et al. Comparison of different approaches for lifetime prediction of electrochemical systems—Using lead-acid batteries as example , 2008 .
[8] James Marco,et al. Characterising Lithium-Ion Battery Degradation through the Identification and Tracking of Electrochemical Battery Model Parameters , 2016 .
[9] Ralph E. White,et al. Development of First Principles Capacity Fade Model for Li-Ion Cells , 2004 .
[10] Le Yi Wang,et al. Reliability Evaluation of Large Scale Battery Energy Storage Systems , 2017, IEEE Transactions on Smart Grid.
[11] Yo Kobayashi,et al. Cycle life estimation of Lithium secondary battery by extrapolation method and accelerated aging test , 2001 .
[12] Balaji Krishnamurthy,et al. A capacity fade model for lithium-ion batteries including diffusion and kinetics , 2012 .
[13] Gregory Levitin,et al. A universal generating function approach for the analysis of multi-state systems with dependent elements , 2004, Reliab. Eng. Syst. Saf..
[14] Daniel S. Kirschen,et al. Modeling of Lithium-Ion Battery Degradation for Cell Life Assessment , 2018, IEEE Transactions on Smart Grid.
[15] Zhiyong Gao,et al. Operational Adequacy Studies of Power Systems With Wind Farms and Energy Storages , 2012, IEEE Transactions on Power Systems.
[16] Ralph E. White,et al. Capacity fade analysis of a lithium ion cell , 2008 .
[17] Gan Ning,et al. Cycle Life Modeling of Lithium-Ion Batteries , 2004 .
[18] L. Guzzella,et al. Model-based distinction and quantification of capacity loss and rate capability fade in Li-ion batteries , 2010 .
[19] Amaia Iturrondobeitia,et al. Second life of electric vehicle batteries: relation between materials degradation and environmental impact , 2015, The International Journal of Life Cycle Assessment.
[20] Daniel S. Kirschen,et al. Stochastic Multistage Coplanning of Transmission Expansion and Energy Storage , 2017, IEEE Transactions on Power Systems.
[21] Ganesan Nagasubramanian,et al. Modeling capacity fade in lithium-ion cells , 2005 .
[22] Probability Subcommittee,et al. IEEE Reliability Test System , 1979, IEEE Transactions on Power Apparatus and Systems.
[23] Michael Osterman,et al. Prognostics of lithium-ion batteries based on DempsterShafer theory and the Bayesian Monte Carlo me , 2011 .
[24] Mahmud Fotuhi-Firuzabad,et al. Operational Reliability Studies of Power Systems in the Presence of Energy Storage Systems , 2018, IEEE Transactions on Power Systems.
[25] Roy Billinton,et al. Reliability evaluation of generating systems containing wind power and energy storage , 2009 .
[26] Renjing Gao,et al. A model‐based and data‐driven joint method for state‐of‐health estimation of lithium‐ion battery in electric vehicles , 2019, International Journal of Energy Research.
[27] Dirk Uwe Sauer,et al. A holistic aging model for Li(NiMnCo)O2 based 18650 lithium-ion batteries , 2014 .
[28] Ralph E. White,et al. Mathematical modeling of the capacity fade of Li-ion cells , 2003 .
[29] Herbert L Case,et al. An accelerated calendar and cycle life study of Li-ion cells. , 2001 .