A Comparative Assessment of Electric Propulsion Systems in the 2030 US Light-Duty Vehicle Fleet
暂无分享,去创建一个
[1] John B. Heywood,et al. ON THE ROAD IN 2020 - A LIFE-CYCLE ANALYSIS OF NEW AUTOMOBILE TECHNOLOGIES , 2000 .
[2] Menahem Anderman,et al. Advanced Batteries for Electric Vehicles: An Assessment of Performance, Cost, and Availability , 2000 .
[3] A. Züttel,et al. Hydrogen-storage materials for mobile applications , 2001, Nature.
[4] Michael Thackeray,et al. Lithium-ion batteries: An unexpected conductor. , 2002, Nature materials.
[5] Donald R. Sadoway,et al. Portable Power: Advanced Rechargeable Lithium Batteries , 2002 .
[6] Vincent Mahieu,et al. Well-to-wheels analysis of future automotive fuels and powertrains in the european context , 2004 .
[7] A. G. Ritchie,et al. Recent developments and likely advances in lithium rechargeable batteries , 2004 .
[8] H. Gasteiger,et al. Activity benchmarks and requirements for Pt, Pt-alloy, and non-Pt oxygen reduction catalysts for PEMFCs , 2005 .
[9] T. Markel,et al. Energy storage systems considerations for grid-charged hybrid electric vehicles , 2005, 2005 IEEE Vehicle Power and Propulsion Conference.
[10] T. Markel,et al. Plug-in Hybrid Electric Vehicle Energy Storage System Design (Presentation) , 2006 .
[11] A. Ritchie,et al. Recent developments and likely advances in lithium-ion batteries , 2006 .
[12] Matthew A Kromer,et al. Electric powertrains : opportunities and challenges in the US light-duty vehicle fleet , 2007 .
[13] John B. Heywood,et al. Comparative Analysis of Automotive Powertrain Choices for the Next 25 Years , 2007 .