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A Study on the Mixing method and Mixing Temperature of Positive Paste to Improve the Capacity of the Lead-Acid Batteries

  • Jeong, Soon-Wook (School of Materials and Science and Engineering, Kumoh National Institute of Technology)
  • Received : 2016.07.05
  • Accepted : 2016.09.29
  • Published : 2016.09.30

Abstract

In this study, the mixing method of positive paste and mixing temperature to improve the capacity of the lead-acid batteries has been investigated. The results show that the initial current capacity of lead acid battery depend on the mixing temperature and mixing method of positive paste. In the results of the capacity cycle repetition tests for estimating the life cycle, the 3BS showed the PCL. but the fine 4BS represented certain improved cycles compared to that of the coarse 4BS. It was considered that the fine 4BS showed higher bond strength between active materials than the coarse 4BS and represented large contact areas and that lead to prevent possible sulfation due to the suppression of insulating layers.

Keywords

References

  1. D. Pavlov, M. Dimitrov, T. Rogachev, L. Bogdanova, Lead/Acid Battery Positive Plates Manufactured from $4PbO.PbSO_4$ Pastes Prepared from Lead oxide and RED lead, J. power sources, 31, 189(1990). https://doi.org/10.1016/0378-7753(90)80071-K
  2. D. Pavlov, M. Dimitrov, T. Rogachev, L. Bogdanova, Influence of paste Composition and Curing Program and Used for the Production of Positive Plates with PbCaSn Grids on the Performance of Lead Acid Batteries, J. power sources, 114, 137(2003). https://doi.org/10.1016/S0378-7753(02)00593-1
  3. Chih-Hsien Yu, Hao-Yuan Tseng, Development of an Automatic Idling Stop and Go Control Apparatus for an EFI Scooter, Journal of Circuits, Systems, and Computers, 23(4), 28(2014).
  4. M. Matrakova and D. Pavlov, Thermal Analysis of Lead-Acid Battery Pastes and Active Materials, J. of power sources, 158, 1004(2006) https://doi.org/10.1016/j.jpowsour.2005.11.007
  5. R. Wagner, Failure modes of valve regulated lead/acid batteries in different applications, 4th European lead battery conference, 153(1995).
  6. S. Laruelle, Grugeon-Dewaele, L. Torcheux , A.Delahaye-Vidal, The Curing Reaction Study of the Active Material in the Lead Acid Battery, J. Power Sources, 77, 83(1999). https://doi.org/10.1016/S0378-7753(98)00187-6
  7. S.W. Jeong et.al., Effects of Curing & Formation Conditions on the Capacity of Positive Plate for Automotive Vehicles VRLA Batteries, J. of Korean Oil Chemists' Soc., 33(1), 83(2016) https://doi.org/10.12925/jkocs.2016.33.1.83
  8. S.W. Jeong et.al., A Study on the AGM Lead Acid Battery for Automotive Vehicles, J. of Korean Oil Chemists' Soc., 32(2), 181(2015) https://doi.org/10.12925/jkocs.2015.32.2.181
  9. J. Wang, S. Zhong, H.K. Liu, S.X.Dou, In fluence of Charge Mode on the Capacity and Cycle Life of Lead-acid Battery Negative Plates, J. Power Sources, 113, 355(2003). https://doi.org/10.1016/S0378-7753(02)00548-7
  10. C.H. Yu, H.Y. Tseng, Development of an Automatic Idling Stop and Go Control Apparatusbfor an EFI Scooter, Journal of Citcuits, System and Computers, 23(4), 28(2014)
  11. S.W. Jeong et.al., Effects of 4BS Crystal Size on the Positive Plate Behavior in Lead Acid Battery, J. of Korean Oil Chemists' Soc., 26(3), 335(2009)
  12. S.W. Jeong et.al., A Study on the Plate for Deep discharge in Lead Acid Battery, J. of Korean Oil Chemists' Soc., 31(2), 197(2014) https://doi.org/10.12925/jkocs.2014.31.2.197
  13. J.S. Chen, L.F. Wang, Effects of Curing on Positive-Plate Behaviour in Electric Scotter Lead/Acid Cells, J. Power Sources, 70, 269 (1998). https://doi.org/10.1016/S0378-7753(97)02657-8
  14. M. J. Weighall, Techniques for Jar Formation of Valve-Regulated lead-Acid Batteries, J. Power Sources, 116, 219(2003). https://doi.org/10.1016/S0378-7753(02)00706-1
  15. J. E. Dix, A, A Comparison of Barton-pot and Ball-Mill Processes for Making Lead Oxide, J. Power Sources, 19, 157(1987). https://doi.org/10.1016/0378-7753(87)80024-1
  16. S.W. Jeong et.al., A Study on the Effects of Semi-Gel Electrolyte in Electricity Storage Battery, J. of Korean Oil Chemists' Soc., 29(2), 193(2012).
  17. B. Drenchev, M. Dimitrov, V. Boev, Absorptive glass mat separator surface modification and its influence on the heat generation in valve-regulated lead-acid battery, J. Power Sources, 280, 66(2015). https://doi.org/10.1016/j.jpowsour.2015.01.090
  18. Hammouche Abderrezak, Thele Marc and Sauer Dirk Uwa, Analysis of gassing processes in a VRLA/spiral wound battery, J. Power Sources, 158, 987(2009).
  19. A. Kirchev, D. Pavlov, B. Monahov, Gas-diffusion approach to oxygen recombination in lead-acid battery, J. Power Sources, 113, 245(2003). https://doi.org/10.1016/S0378-7753(02)00520-7
  20. Ku Bon-Keun, Jeong Soon-Wook, Effects of Curing Conditions on the Chemical Compositions of Positive Plate of Lead Acid Battery Plates, J. of Korean Oil Chemists' Soc., 23(4), 347(2006)