Large-scale automotive battery cell manufacturing: Analyzing strategic and operational effects on manufacturing costs
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[1] J. Leker,et al. Battery plant location considering the balance between knowledge and cost: A comparative study of the EU-28 countries , 2020 .
[2] F. Duffner,et al. Battery cost modeling: A review and directions for future research , 2020 .
[3] Zhongwei Chen,et al. Ni‐Rich/Co‐Poor Layered Cathode for Automotive Li‐Ion Batteries: Promises and Challenges , 2020, Advanced Energy Materials.
[4] G. Reinhart,et al. Solid versus Liquid—A Bottom‐Up Calculation Model to Analyze the Manufacturing Cost of Future High‐Energy Batteries , 2020, Energy Technology.
[5] O. Guillon,et al. Ceramics for electrochemical storage , 2020 .
[6] Christoph Herrmann,et al. Toward Data‐Driven Applications in Lithium‐Ion Battery Cell Manufacturing , 2020, Energy Technology.
[7] Chie Hoon Song,et al. Analysis of technological knowledge stock and prediction of its future development potential: The case of lithium-ion batteries , 2019, Journal of Cleaner Production.
[8] M. Winter,et al. Towards water based ultra-thick Li ion battery electrodes – A binder approach , 2019, Journal of Power Sources.
[9] Marc Wentker,et al. A Bottom-Up Approach to Lithium-Ion Battery Cost Modeling with a Focus on Cathode Active Materials , 2019, Energies.
[10] Martin Winter,et al. Theoretical versus Practical Energy: A Plea for More Transparency in the Energy Calculation of Different Rechargeable Battery Systems , 2018, Advanced Energy Materials.
[11] Randolph Kirchain,et al. Lightweighting technologies: Analyzing strategic and economic implications of advanced manufacturing processes , 2018 .
[12] M. Winter,et al. Before Li Ion Batteries. , 2018, Chemical reviews.
[13] D. Bresser,et al. Alternative binders for sustainable electrochemical energy storage – the transition to aqueous electrode processing and bio-derived polymers , 2018 .
[14] Marissa Wood,et al. Balancing formation time and electrochemical performance of high energy lithium-ion batteries , 2018, Journal of Power Sources.
[15] T. Rabczuk,et al. Dimensional analysis and modelling of energy density of lithium-ion battery , 2018, Journal of Energy Storage.
[16] Dong-Won Kim,et al. Sodium-ion batteries: New opportunities beyond energy storage by lithium , 2018, Journal of Power Sources.
[17] M. Winter,et al. Performance and cost of materials for lithium-based rechargeable automotive batteries , 2018 .
[18] Wolfgang Haselrieder,et al. Current status and challenges for automotive battery production technologies , 2018 .
[19] Khalil Amine,et al. Perspectives of automotive battery R&D in China, Germany, Japan, and the USA , 2018 .
[20] S. Passerini,et al. A cost and resource analysis of sodium-ion batteries , 2018 .
[21] Thomas Knoche. Elektrolytbefüllung prismatischer Lithium-Ionen-Zellen , 2018 .
[22] Karim Zaghib,et al. Advances in lithium—sulfur batteries , 2017 .
[23] Wei Shyy,et al. Advances and challenges in lithium-air batteries , 2017 .
[24] Joeri Van Mierlo,et al. Cost Projection of State of the Art Lithium-Ion Batteries for Electric Vehicles Up to 2030 , 2017 .
[25] D. Andre,et al. Future high-energy density anode materials from an automotive application perspective , 2017 .
[26] Jeremy J. Michalek,et al. Consistency and robustness of forecasting for emerging technologies: the case of Li-ion batteries for electric vehicles , 2017 .
[27] Partha P. Mukherjee,et al. Enabling aqueous processing for crack-free thick electrodes , 2017 .
[28] Martin Winter,et al. Lithium ion, lithium metal, and alternative rechargeable battery technologies: the odyssey for high energy density , 2017, Journal of Solid State Electrochemistry.
[29] Kevin G. Gallagher,et al. Cost and energy demand of producing nickel manganese cobalt cathode material for lithium ion batteries , 2017 .
[30] Jay F. Whitacre,et al. Comparison between cylindrical and prismatic lithium-ion cell costs using a process based cost model , 2017 .
[31] Peter Lamp,et al. Nickel-Rich Layered Cathode Materials for Automotive Lithium-Ion Batteries: Achievements and Perspectives , 2017 .
[32] G. Blomgren. The development and future of lithium ion batteries , 2017 .
[33] H. Hahn,et al. A systematic study of thick electrodes for high energy lithium ion batteries , 2016 .
[34] Ralf Schledjewski,et al. Review of cost estimation: methods and models for aerospace composite manufacturing , 2016 .
[35] Gunther Reinhart,et al. Quality Management for Battery Production: A Quality Gate Concept☆ , 2016 .
[36] Wolfgang Haselrieder,et al. Discontinuous and Continuous Processing of Low-Solvent Battery Slurries for Lithium Nickel Cobalt Manganese Oxide Electrodes , 2015, Journal of Electronic Materials.
[37] Jens Tübke,et al. Lithium–Sulfur Cells: The Gap between the State‐of‐the‐Art and the Requirements for High Energy Battery Cells , 2015 .
[38] Christoph Herrmann,et al. Material cost model for innovative li-ion battery cells in electric vehicle applications , 2015 .
[39] Kevin G. Gallagher,et al. Cost savings for manufacturing lithium batteries in a flexible plant , 2015 .
[40] Geng Wu,et al. Total cost of ownership of electric vehicles compared to conventional vehicles: A probabilistic analysis and projection across market segments , 2015 .
[41] Peter Lamp,et al. Future generations of cathode materials: an automotive industry perspective , 2015 .
[42] Claus Daniel,et al. Prospects for reducing the processing cost of lithium ion batteries , 2015 .
[43] S. Martinet,et al. Cost modeling of lithium‐ion battery cells for automotive applications , 2015 .
[44] Apurba Sakti,et al. A techno-economic analysis and optimization of Li-ion batteries for light-duty passenger vehicle electrification , 2015 .
[45] Claire Villevieille,et al. Rechargeable Batteries: Grasping for the Limits of Chemistry , 2015 .
[46] Ozan Toprakci,et al. A review of recent developments in membrane separators for rechargeable lithium-ion batteries , 2014 .
[47] Kang Xu,et al. Electrolytes and interphases in Li-ion batteries and beyond. , 2014, Chemical reviews.
[48] B. Wee,et al. The influence of financial incentives and other socio-economic factors on electric vehicle adoption , 2014 .
[49] Norbert Willenbacher,et al. Prozess‐ und Produktentwicklung von Elektroden für Li‐Ionen‐Zellen , 2014 .
[50] Kevin G. Gallagher,et al. Quantifying the promise of lithium–air batteries for electric vehicles , 2014 .
[51] Achim Kampker,et al. Roadmap Batterie-Produktionsmittel 2030 , 2014 .
[52] P. Scharfer,et al. Slot die coating of lithium-ion battery electrodes: investigations on edge effect issues for stripe and pattern coatings , 2016, Journal of Coatings Technology and Research.
[53] Ralph J. Brodd,et al. Cost comparison of producing high-performance Li-ion batteries in the U.S. and in China , 2013 .
[54] Jens Leker,et al. Current research trends and prospects among the various materials and designs used in lithium-based batteries , 2013, Journal of Applied Electrochemistry.
[55] I. Staffell,et al. Current status of hybrid, battery and fuel cell electric vehicles: From electrochemistry to market prospects , 2012 .
[56] Xiangyun Song,et al. A comprehensive understanding of electrode thickness effects on the electrochemical performances of Li-ion battery cathodes , 2012 .
[57] Stefan Seuring,et al. Applying activity-based costing in a supply chain environment , 2012 .
[58] Kevin G. Gallagher,et al. Modeling the performance and cost of lithium-ion batteries for electric-drive vehicles. , 2011 .
[59] Randolph Kirchain,et al. A dynamic process-based cost modeling approach to understand learning effects in manufacturing , 2010 .
[60] P. Novák,et al. A review of the features and analyses of the solid electrolyte interphase in Li-ion batteries , 2010 .
[61] B. Scrosati,et al. Lithium batteries: Status, prospects and future , 2010 .
[62] Chang Liu,et al. Advanced Materials for Energy Storage , 2010, Advanced materials.
[63] Martin Winter,et al. The Solid Electrolyte Interphase – The Most Important and the Least Understood Solid Electrolyte in Rechargeable Li Batteries , 2009 .
[64] Michael Johnson,et al. Quantifying the effects of product family decisions on material selection: A process-based costing approach , 2009 .
[65] Randolph Kirchain,et al. Quantifying the effects of parts consolidation and development costs on material selection decisions: A process-based costing approach , 2009 .
[66] M. Yoshio,et al. Lithium-ion batteries , 2009 .
[67] Kazuo Tagawa,et al. Production Processes for Fabrication of Lithium-Ion Batteries , 2009 .
[68] Li Qian,et al. Parametric cost estimation based on activity-based costing: A case study for design and development of rotational parts , 2008 .
[69] Dirk Cattrysse,et al. Cost estimation for sheet metal parts using multiple regression and artificial neural networks: A case study , 2008 .
[70] Randolph Kirchain,et al. Process cost modeling: Strategic engineering and economic evaluation of materials technologies , 2007 .
[71] François Vernadat,et al. Cost estimation in mechanical production: The Cost Entity approach applied to integrated product engineering , 2006 .
[72] R.E. Kirchain,et al. Process-based cost modeling of photonics manufacture: the cost competitiveness of monolithic integration of a 1550-nm DFB laser and an electroabsorptive modulator on an InP platform , 2006, Journal of Lightwave Technology.
[73] Jian S. Dai,et al. Product Cost Estimation: Technique Classification and Methodology Review , 2006 .
[74] Paul G. Maropoulos,et al. Artificial neural networks as a cost engineering methods in collaborative manufacturing environment. , 2005 .
[75] Mirko Ficko,et al. Prediction of total manufacturing costs for stamping tool on the basis of CAD-model of finished product , 2005 .
[76] Richard Curran,et al. Review of Aerospace Engineering Cost Modelling: The Genetic Causal Approach , 2004 .
[77] Sergio Cavalieri,et al. Parametric vs. neural network models for the estimation of production costs: A case study in the automotive industry , 2004 .
[78] M. Whittingham,et al. Lithium batteries and cathode materials. , 2004, Chemical reviews.
[79] L. E. Scriven,et al. Low-flow limit in slot coating of dilute solutions of high molecular weight polymer , 2004 .
[80] Li Qian,et al. Activity-based cost management for design and development stage , 2003 .
[81] Essam Shehab,et al. A design to cost system for innovative product development , 2002 .
[82] Rajkumar Roy,et al. Expert Judgement in Cost Estimating: Modelling the Reasoning Process , 2001, Concurr. Eng. Res. Appl..
[83] Essam Shehab,et al. Manufacturing cost modelling for concurrent product development , 2001 .
[84] Haroon S. Kheshgi,et al. Low-flow limit in slot coating: Theory and experiments , 2000 .
[85] J. M. Castelain,et al. Cost Estimation During Design Step: Parametric Method versus Case Based Reasoning Method , 1999 .
[86] Ralph E. White,et al. Capacity Fade Mechanisms and Side Reactions in Lithium‐Ion Batteries , 1998 .
[87] W. T. Chan,et al. Feature-based cost estimation for packaging products using neural networks , 1996 .
[88] R. Cooper. How Cost Accounting Distorts Product Costs , 1988 .