Web-Books
in the Austria-Forum
Austria-Forum
Web-Books
Technik
Hybrid Electric Vehicles
Page - 28 -
  • User
  • Version
    • full version
    • text only version
  • Language
    • Deutsch - German
    • English

Page - 28 - in Hybrid Electric Vehicles

Image of the Page - 28 -

Image of the Page - 28 - in Hybrid Electric Vehicles

Text of the Page - 28 -

[58] Thielmann A, Sauer A, Isenmann R, et al. Produkt-roadmap lithium-ionen-batterien 2030. Report. Fraunhofer ISI, Germany; February 2012 [59] Waag W, Fleischer C, Sauer DU. Critical review of the methods for monitoring of lithium- ion batteries in electric and hybrid vehicles. Journal of Power Sources.2014;258:321-339 [60] Su X, Wu Q, Li J, et al. Silicon-based nanomaterials for lithium-ion batteries: A review. Advanced Energy Materials. 2014;4:1-23 [61] Cherry J. Battery durability in electrified vehicle applications: A review of degradation mechanisms and durability testing. FEV North America Report; 2016 [62] Mousazadeh H, Keyhani A, Javadi A, Mobli H, Abrinia K, Sharifi A. Evaluation of alterna- tive battery technologies for a solar assist plug-in hybrid electric tractor. Transportation Research Part D.2010;15:507-512 [63] Kucinskis G, Bajars G, Kleperis J. Graphene in lithium ion battery cathode materials: A review. Journal of Power Sources. 2013;240:66-79 [64] Snook GA, Kao P, Best AS. Conducting-polymerbased supercapacitor devices and elec- trodes. Journal of Power Sources. 2011;196:1-12 [65] Zhang K, Zhang LL, Zhao XS, et al. Graphene/polyaniline nanofiber composites as supercapacitor electrodes. Chemistry of Materials. 2010;22:1392-1401 [66] De Souza VHR, Oliveira MM, Zarbin AJG. Thin and flexible all-solid supercapacitor prepared from novel single wall carbon nanotubes/polyaniline thin films obtained in liquid–liquid interfaces. Journal of Power Sources. 2014;260:34-42 [67] Peng C, Zhang S, Jewell D, et al. Carbon nanotube and conducting polymer composites for supercapacitors. Progress in Natural Science.2008;18:777-788 [68] Van de Ven JD. Constant pressure hydraulic energy storage through a variable area pis- ton hydraulic accumulator. Applied Energy. 2013;105:262-270 [69] Liang X, Virvalo T. An energy recovery system for a hydraulic crane. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science.2001;215:737-744 [70] Ho TH, Ahn K. Design and control of a closed-loop hydraulic energy-regenerative sys- tem. Automation in Construction. 2012;22:444-458 [71] Wang T, Wang Q. An energy-saving pressure-compensated hydraulic system with elec- trical approach. IEEE/ASME Transactions on Mechatronics. 2014;19:570-578 [72] Wang T, Wang Q, Lin T. Improvement of boom control performance for hybrid hydraulic excavator with potential energy recovery. Automation in Construction. 2013;30:161-169 [73] Ho TH, Ahn KK. Modeling and simulation of hydrostatic transmission system with energy regeneration using hydraulic accumulator. Journal of Mechanical Science and Technology. 2010;24:1163-1175 Hybrid Electric Vehicles28
back to the  book Hybrid Electric Vehicles"
Hybrid Electric Vehicles
Title
Hybrid Electric Vehicles
Author
Teresa Donateo
Editor
InTech
Location
Rijeka
Date
2017
Language
English
License
CC BY 4.0
ISBN
978-953-51-3298-1
Size
15.5 x 22.5 cm
Pages
162
Keywords
Physical Sciences, Engineering and Technology, Engineering, Vehicle Engineering, Automobile Engineering
Category
Technik
Web-Books
Library
Privacy
Imprint
Austria-Forum
Austria-Forum
Web-Books
Hybrid Electric Vehicles