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Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery

Yıl 2015, Cilt: 5 Sayı: 2, 464 - 475, 01.06.2015

Öz

In this paper, we propose the battery transient response model and parameter extraction method for studying the dynamic behaviors of Manganese-type Lithium-Ion battery. The background knowledge of the battery structure and its operating principle are also concluded. Several aspects of operating conditions, such as charging and discharging operations, environments of terminal currents and temperatures, are considered through the experiments for understanding the battery behaviors.  The characteristics of internal effective series resistance, battery capacity, and capacity deterioration to the operational and environmental conditions are also evaluated and analyzed physically.  The transient response model and the extracted parameters are validated with a Spice simulation for the practical testing data.  The terminal voltage response shows an acceptable conformity for the experiment and simulation to different periods and amplitudes of pulse currents.

Kaynakça

  • W. Schalkwijk and B. Scrosati, Advances in Lithium-Ion batteries, Springer, 2002. [2] H. Zhang and M. Y. Chow, “Comprehensive- dynamic battery modeling for PHEV- applications”, Power and Energy society general meeting, 2010-IEEE, DOI: 10.1109/PES.2010.5590108, pp. 1-6, 2010.
  • Y. Zhang, C. Zhang, and N. Cui, “An adaptive estimation scheme for open-circuit voltage of power Lithium-Ion battery”, Research article in Abstract and applied analysis, Hindawi publishing corp., Vol.2013, Article ID 481976, pp.1-6, 2013.
  • A. Rahmoun and H. Biechl, “Modelling of Li-ion batteries using equivalent circuit diagrams”, Electrical review, ISSN 0033-2097, R.88NR-7b, pp.152-156, 2012.
  • D. Andrea, Battery management systems for large Li-ion battery packs, Artech house press, Boston, 2010.
  • D. K. Kim, P. Muralidharan, H.W. Lee, R. Ruffo, Y. Yang, Candace K. Chan, H. Peng, Robert A. Huggins and Yi Cui, “Spinel LiMn2O nanorods as Lithium ion battery cathodes”, Nano letters, American chemical society, Vol.8(11), pp.3948- 3952, Dec, 2008.
  • A. Patil, V. Patil, D. W. Shin, J. W. Choi, D. S. Paik, and S. J. Yoon, “Review issue and challenges facing rechargeable thin film Lithium batteries”, Materials research bulletin 43 on Science direct, pp.1913-1942, Sep, 2008.
  • T. Piao, S. M. Parka, C. H. Dohb, and S. I. Moon, “Intercalation of Li-ion into Graphite electrodes studied by AC impedance measurements”, J. Electrochem. Sci., Vol.146(8), pp.2794-2798, 1999.
  • M. Urbain, M. Hinaje, S. Raël, B. Davat, and P. Desprez, “Energetical modeling of Li-ion batteries”, Industry Applications Conf., 42nd IAS Annual Meeting conference of IEEE, LA, USA, pp. 714-721, 2007.
  • G. W. Ling, X. Zhu, Y. B. He1, Q. S. Song, B. Li, Y. J. Li, Q. H. Yang, and Z. Y. Tang, “Structural and thermal stabilities of spinel LiMn2O4 materials under commercial power batteries cycling and abusive conditions”, Int. J. Electrochem. Sci., Vol.7, pp.2455-2467, 2012.
  • P. Arora and Z. J. Zhang, “Battery Separators”, Chemical Reviews, Vol.104(10), pp.4419-4462, 2004.
  • H.J. Bergveld , W.S. Kruijt, and Peter H. L. Notten, Battery management systems: Design by modeling, Philips research vol.1, Springer, pp.31-52, 2002.
  • C. H. Doh, D. H. Kim, J. H. Lee, D. J. Lee, B. S. Jin, H. S. Kim, S. I. Moon, Y. Hwang, and A. Veluchamy, “Thermal behavior of LixCoO2 cathode and disruption of solid electrolyte interphase film”, Bull, Korean Chem. Soc., 30 (4), pp.783–786, 2009.
  • M.B. Pinson and M. Z. Bazant, “Theory of SEI formation in rechargeable batteries: Capacity fade, accelerated aging and lifetime prediction”, Dept. of Physics, MIT, USA, pp.3-5, 2012.
  • M. Parka, X. Zhanga, M. Chunga, G. B. Lessa, and A. M. Sastry, “A review of conduction phenomena in Li-ion batteries”, J. Power sources, Vol.195(24), pp.7904-7929, 2010.
  • E. Kuhn, C. Forgez, P. Lagonotte, and G. Friedrich, “Modelling Ni-MH battery using Cauer and Foster structures”, J. Power Sources, Vol58(2), pp. 1490-1497, 2006.
  • S.S. Zhang, K. Xu, and T.R. Jow, “Electrochemical impedance study on the low temperature of Li-ion batteries”, Electro-chim. Acta, Vol.49(7), pp.1057-1061, 2004.
  • B. Schweighofer, K. M. Raab, and G. Brasseur, “Modeling of high power automotive batteries by the use of an automated test system”, IEEE trans. on instrumentation and measurement, Vol.52(4), 2003.
  • M. Chen and G.A. Rincon-Mora, “Accurate electrical battery model capable of predicting runtime and I-V performance”, IEEE Trans. On Energy Conversion, Vol. 21(2), pp.504-511, 2006.
  • S.S. Zhang, K. Xu, and T.R. Jow, “The low temperature performance of Li-ion batteries”, J. Power sources, Vol.115(-), pp.137-140, 2003.
  • M.A. Roscher, J. Assfalg, and O. S. Bohlen, “Detection of utilizable capacity deterioration in battery systems”, IEEE Trans. On Vehicular Technology, Vol. 60(1), pp.98-103, 2011.
  • K. Eberman, P. Gomadam, G. Jain, and E. Scott, “Material and design options for avoiding Lithium plating during charging”, ECS Transactions, Vol. 25(35), pp.47-58, 2010.
Yıl 2015, Cilt: 5 Sayı: 2, 464 - 475, 01.06.2015

Öz

Kaynakça

  • W. Schalkwijk and B. Scrosati, Advances in Lithium-Ion batteries, Springer, 2002. [2] H. Zhang and M. Y. Chow, “Comprehensive- dynamic battery modeling for PHEV- applications”, Power and Energy society general meeting, 2010-IEEE, DOI: 10.1109/PES.2010.5590108, pp. 1-6, 2010.
  • Y. Zhang, C. Zhang, and N. Cui, “An adaptive estimation scheme for open-circuit voltage of power Lithium-Ion battery”, Research article in Abstract and applied analysis, Hindawi publishing corp., Vol.2013, Article ID 481976, pp.1-6, 2013.
  • A. Rahmoun and H. Biechl, “Modelling of Li-ion batteries using equivalent circuit diagrams”, Electrical review, ISSN 0033-2097, R.88NR-7b, pp.152-156, 2012.
  • D. Andrea, Battery management systems for large Li-ion battery packs, Artech house press, Boston, 2010.
  • D. K. Kim, P. Muralidharan, H.W. Lee, R. Ruffo, Y. Yang, Candace K. Chan, H. Peng, Robert A. Huggins and Yi Cui, “Spinel LiMn2O nanorods as Lithium ion battery cathodes”, Nano letters, American chemical society, Vol.8(11), pp.3948- 3952, Dec, 2008.
  • A. Patil, V. Patil, D. W. Shin, J. W. Choi, D. S. Paik, and S. J. Yoon, “Review issue and challenges facing rechargeable thin film Lithium batteries”, Materials research bulletin 43 on Science direct, pp.1913-1942, Sep, 2008.
  • T. Piao, S. M. Parka, C. H. Dohb, and S. I. Moon, “Intercalation of Li-ion into Graphite electrodes studied by AC impedance measurements”, J. Electrochem. Sci., Vol.146(8), pp.2794-2798, 1999.
  • M. Urbain, M. Hinaje, S. Raël, B. Davat, and P. Desprez, “Energetical modeling of Li-ion batteries”, Industry Applications Conf., 42nd IAS Annual Meeting conference of IEEE, LA, USA, pp. 714-721, 2007.
  • G. W. Ling, X. Zhu, Y. B. He1, Q. S. Song, B. Li, Y. J. Li, Q. H. Yang, and Z. Y. Tang, “Structural and thermal stabilities of spinel LiMn2O4 materials under commercial power batteries cycling and abusive conditions”, Int. J. Electrochem. Sci., Vol.7, pp.2455-2467, 2012.
  • P. Arora and Z. J. Zhang, “Battery Separators”, Chemical Reviews, Vol.104(10), pp.4419-4462, 2004.
  • H.J. Bergveld , W.S. Kruijt, and Peter H. L. Notten, Battery management systems: Design by modeling, Philips research vol.1, Springer, pp.31-52, 2002.
  • C. H. Doh, D. H. Kim, J. H. Lee, D. J. Lee, B. S. Jin, H. S. Kim, S. I. Moon, Y. Hwang, and A. Veluchamy, “Thermal behavior of LixCoO2 cathode and disruption of solid electrolyte interphase film”, Bull, Korean Chem. Soc., 30 (4), pp.783–786, 2009.
  • M.B. Pinson and M. Z. Bazant, “Theory of SEI formation in rechargeable batteries: Capacity fade, accelerated aging and lifetime prediction”, Dept. of Physics, MIT, USA, pp.3-5, 2012.
  • M. Parka, X. Zhanga, M. Chunga, G. B. Lessa, and A. M. Sastry, “A review of conduction phenomena in Li-ion batteries”, J. Power sources, Vol.195(24), pp.7904-7929, 2010.
  • E. Kuhn, C. Forgez, P. Lagonotte, and G. Friedrich, “Modelling Ni-MH battery using Cauer and Foster structures”, J. Power Sources, Vol58(2), pp. 1490-1497, 2006.
  • S.S. Zhang, K. Xu, and T.R. Jow, “Electrochemical impedance study on the low temperature of Li-ion batteries”, Electro-chim. Acta, Vol.49(7), pp.1057-1061, 2004.
  • B. Schweighofer, K. M. Raab, and G. Brasseur, “Modeling of high power automotive batteries by the use of an automated test system”, IEEE trans. on instrumentation and measurement, Vol.52(4), 2003.
  • M. Chen and G.A. Rincon-Mora, “Accurate electrical battery model capable of predicting runtime and I-V performance”, IEEE Trans. On Energy Conversion, Vol. 21(2), pp.504-511, 2006.
  • S.S. Zhang, K. Xu, and T.R. Jow, “The low temperature performance of Li-ion batteries”, J. Power sources, Vol.115(-), pp.137-140, 2003.
  • M.A. Roscher, J. Assfalg, and O. S. Bohlen, “Detection of utilizable capacity deterioration in battery systems”, IEEE Trans. On Vehicular Technology, Vol. 60(1), pp.98-103, 2011.
  • K. Eberman, P. Gomadam, G. Jain, and E. Scott, “Material and design options for avoiding Lithium plating during charging”, ECS Transactions, Vol. 25(35), pp.47-58, 2010.
Toplam 21 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Bölüm Articles
Yazarlar

Natthawuth Somakettarin Bu kişi benim

Tsuyoshi Funaki Bu kişi benim

Yayımlanma Tarihi 1 Haziran 2015
Yayımlandığı Sayı Yıl 2015 Cilt: 5 Sayı: 2

Kaynak Göster

APA Somakettarin, N., & Funaki, T. (2015). Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery. International Journal Of Renewable Energy Research, 5(2), 464-475.
AMA Somakettarin N, Funaki T. Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery. International Journal Of Renewable Energy Research. Haziran 2015;5(2):464-475.
Chicago Somakettarin, Natthawuth, ve Tsuyoshi Funaki. “Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery”. International Journal Of Renewable Energy Research 5, sy. 2 (Haziran 2015): 464-75.
EndNote Somakettarin N, Funaki T (01 Haziran 2015) Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery. International Journal Of Renewable Energy Research 5 2 464–475.
IEEE N. Somakettarin ve T. Funaki, “Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery”, International Journal Of Renewable Energy Research, c. 5, sy. 2, ss. 464–475, 2015.
ISNAD Somakettarin, Natthawuth - Funaki, Tsuyoshi. “Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery”. International Journal Of Renewable Energy Research 5/2 (Haziran 2015), 464-475.
JAMA Somakettarin N, Funaki T. Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery. International Journal Of Renewable Energy Research. 2015;5:464–475.
MLA Somakettarin, Natthawuth ve Tsuyoshi Funaki. “Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery”. International Journal Of Renewable Energy Research, c. 5, sy. 2, 2015, ss. 464-75.
Vancouver Somakettarin N, Funaki T. Parameter Extraction and Characteristics Study for Manganese-Type Lithium-Ion Battery. International Journal Of Renewable Energy Research. 2015;5(2):464-75.