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Lithium-ion Cells for High-End Applications

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Lithium-ion Battery Materials and Engineering

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Abstract

Engineering and building lithium-ion cells for high-end applications usually requires a very different approach than manufacturing commercial batteries. The high-end power sources engineering challenges and ways to address them are in most cases unique to a given application and often require “pushing the envelope.” The lessons learned in such challenging conditions are often transferable to commercial applications. In this chapter, lithium-ion batteries for satellites, high energy, high power, and elevated temperature applications are discussed.

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References

  1. http://www.everything-robotic.com/2011/10/emerging-underwater-businesses-three.html. Accessed on June 25, 2013

  2. Reddy TB, Linden D, eds (2010) Linden’s handbook of batteries 4th edition. McGraw-Hill, New York

    Google Scholar 

  3. http://yardney.com/Lithion/lithion.html. Accessed on June 25, 2013

  4. http://www.hitachi-ve.co.jp/en/products/spec/index.html. Accessed on June 25, 2013

  5. www.gsyuasa-lp.com/download/file/fid/152. Accessed on June 25, 2013

  6. http://www.panasonic.com/industrial/batteries-oem/oem/lithium-ion.aspx. Accessed on June 25, 2013

  7. http://www.samsungsdi.com/battery/prismatic-ICP103450.jsp. Accessed on June 25, 2013

  8. http://ultralifecorporation.com/be-military/products/military-rechargeable/. Accessed on June 25, 2013

  9. http://ultralifecorporation.com/downloads/. Accessed on June 25, 2013

  10. http://www.patcoelectronics.com/products/rechargeable-lithium-ion-batteries/. Accessed on June 25, 2013

  11. http://www.power-sonic.com/sealed_batteries.php. Accessed on June 25, 2013

  12. Committee on Soldier Power/Energy Systems Board on Army Science and Technology Division on Engineering and Physical Sciences, National Research Council of the National Academies (2004) Meeting the Energy Needs of Future Warriors. The National Academic Press, Washington DC

    Google Scholar 

  13. http://www.popularmechanics.com/technology/military/4215715. Accessed on June 25, 2013

  14. http://www.army-technology.com/projects/land_warrior/. Accessed on June 25, 2013

  15. http://hearinglosshelp.com/weblog/526.php. Accessed on June 25, 2013

  16. Bruschini L, Forli F, Santoro A, Bruschini P, Berrettini, S (2009) Fully implantable Otologics MET Carina™ device for the treatment of sensorineural hearing loss. Preliminary surgical and clinical results. Acta Otorhinolaryngol Ital 29:79–85

    Google Scholar 

  17. Luers, JC, Beutner D, Huettenbrink, KB (2011) Implantable hearing aids. HNO 59:980-987. doi:10.1007/s00106-011-2402-0

  18. Flint PW et al. (2010) Cummings Otolaryngology - Head and Neck Surgery, 5th edition. Mosby – Elsevier, Philadelphia, PA

    Google Scholar 

  19. http://www.nerac.com/nerac_insights.php?category=articles&id=151. Accessed on June 25, 2013

  20. http://engineering.illinois.edu/news/2013/02/28/stretchable-battery-flexible-circuits. Accessed on June 25, 2013

  21. Valdastri, P, Simi, M, Webster, RJ (2012) Advanced Technologies for Gastrointestinal Endoscopy. Annu Rev Biomed Eng 14:397–429. doi: 10.1146/annurev-bioeng-071811-150006

  22. Medtronic (2007) RestoreULTRA™ Implant Manual. No. 37712

    Google Scholar 

  23. Xcellion™ Rechargeable Batteries Specifications Sheet. Accessed on June 25, 2013. http://www.greatbatchmedical.com/assets/products/Xcellion%20Rechargeable%20Batteries.pdf

  24. http://www.quallion.com/sub-sp-main.asp. Accessed on June 25, 2013

  25. EaglePicher Medical Power. Products and Services Catalog 2010. http://www.eaglepicher.com/images/Medical/EaglePicher%20Medical%20Brochure%202010.pdf. Accessed on June 25, 2013

  26. http://www.panasonic.com/industrial/batteries-oem/oem/nickel-metal-hydride.aspx. Accessed on June 25, 2013

  27. http://www.power-sonic.com/images/powersonic/sla_batteries/ps_psg_series/2volt/PS-260_11_Feb_21.pdf. Accessed on June 25, 2013

  28. Smart MC, Ratnakumar BV (2011) Effects of Electrolyte Composition on Lithium Plating in Lithium-ion Cells. J Electrochem Soc 158:A379–A389. doi:10.1149/1.3544439

  29. Gulbinska M, Moore G, Santee S, Lucht B, Puglia F (2011) Comprehensive improvements in Li-ion batteries for demanding applications. J Power Sources 196:2899–2904. doi:10.1016/j.jpowsour.2010.10.087

  30. MIL-STD-810G, Department of Defense Test Method Standard

    Google Scholar 

  31. Fleener W (1997) Aircraft Main Battery Development Program for the F/A-18E/F Super Hornet Aircraft. SAE Technical Paper 971220. doi:10.4271/971220

  32. Surampudi S, Halpert G, Marsh RA, James R (1998) Lithium-Ion Batteries for Aerospace Applications. 9th International Li Battery Meeting, Edinburgh, Scotland

    Google Scholar 

  33. Marsh RA, Vukson S, Surampudi S, Ratnakumar BV, Smart MC, Manzo M, Dalton PJ (2001) Li ion batteries for aerospace applications. J Power Sources 97:25–27. doi:10.1016/S0378-7753(01)00584-5

  34. Smart MC, Ratnakumar BV, Whitcanack LD, Puglia FJ, Santee S and Gitzendanner R (2010) Life Verification of Large Capacity Yardney Li-ion Cells and Batteries in Support of NASA Missions. Int J Energy Res 34:116–132. doi: 10.1002/er.1653

  35. http://www.nasa.gov/pdf/396773main_mf18_ouellette.pdf. Accessed on June 25, 2013

  36. http://osbp.nasa.gov/docs/MARS%20OSB_CS55_FINAL_LO=TAGGED.pdf. Accessed on June 25, 2013

  37. http://www.jpl.nasa.gov/news/fact_sheets/mars03rovers.pdf. Accessed on June 25, 2013

  38. http://www.universetoday.com/96553/quick-and-curious-facts-about-the-mars-science-laboratory-mission/. Accessed on June 25, 2013

  39. Ratnakumar BV, Smart MC, Kindler A, Frank H, Ewell R, Surampudi S (2003) Lithium batteries for aerospace applications: 2003 Mars Exploration Rover. J Power Sources 119:906–910. doi:10.1016/S0378-7753(03)00220-9

  40. http://marsrover.nasa.gov/mission/traverse_maps.html. Accessed on June 25, 2013

  41. http://www.space.com/18766-spirit-rover.html. Accessed on June 25, 2013

  42. McKissock B, Loyselle P, Vogel E (2008) Guidelines on Lithium-ion Battery Use in Space Applications. NASA Engineering and Safety Center Technical Report NASA/TM-2009-215751, NESC-RP-08-75/06-069-I

    Google Scholar 

  43. Manzo M, Brewer JC, Bugga BV, Darcy EC, Jeevarajan J (2010) NASA Aerospace Flight Battery Program. Generic Safety, Handling and Qualification Guidelines for Lithium-ion (Li-ion) Batteries NASA/TM-2010-216727/Volume II, NESC-RP-08-75

    Google Scholar 

  44. Walter PL, Pyroshock Explained, Technical Note TN-23, PCB Piezoelectronics, Inc.

    Google Scholar 

  45. http://www.dodbuzz.com/2013/05/21/navy-developing-hybrid-electric-amphibious-assault-ships/. Accessed on June 25, 2013

  46. Doerry N, Fireman H (2006) Designing All Electric Ships. Ninth International Marine Design Conference. Ann Arbor, Michigan. May 16–19, 2006

    Google Scholar 

  47. http://www.nytimes.com/2012/08/28/science/earth/cargo-ship-designers-turn-to-wind-to-cut-cost-and-emissions.html?_r=0. Accessed on June 25, 2013

  48. Noble P (2009) Past and Present Use of Electric Ships in the Energy Industry. IEEE Electric Ship Technologies Symposium. Accessed on June 25, 2013

    Google Scholar 

  49. http://news.panasonic.net/archives/2012/0629_11250.html. Accessed on June 25, 2013

  50. http://www.gereports.com/the-pulse-of-the-sea/. Accessed on June 25, 2013

  51. Puglia F, Cohen S, Hall J, Yevoli V (2005) Very Large Lithium Ion Cell and Battery Designs. The 5th International Advanced Automotive & Ultracapacitor Conference (AABC-05) Proceedings. Honolulu, Hawaii

    Google Scholar 

  52. Rausand M, Høyland A (2004) System Reliability Theory: Models, Statistical Methods, and Applications, 2nd Edition, John Wiley & Sons, Hoboken, NJ

    Google Scholar 

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Correspondence to Gregory J. Moore .

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Moore, G.J., Puglia, F.J., Gulbinska, M.K. (2014). Lithium-ion Cells for High-End Applications. In: Gulbinska, M. (eds) Lithium-ion Battery Materials and Engineering. Green Energy and Technology. Springer, London. https://doi.org/10.1007/978-1-4471-6548-4_4

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  • DOI: https://doi.org/10.1007/978-1-4471-6548-4_4

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  • Online ISBN: 978-1-4471-6548-4

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