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Dynamics of Inductive Power Transfer Systems

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Phasor Power Electronics

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Abstract

As an example of applying the Laplace phasor transform to a practical problem solving a large signal dynamic model of the inductive power transfer system (IPTS) for on-line electric vehicles (OLEVs) is explained in this chapter. As an example of applying the Laplace phasor transform to a practical problem solving a large signal dynamic model of the inductive power transfer system (IPTS) for on-line electric vehicles (OLEVs) is explained in this chapter.

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References

  1. Lee S, Choi B, Rim CT (2013) Dynamics Characterization of the inductive power transfer system for on-line electric vehicles by laplace phasor transform. IEEE Trans Power Electron 28(12):5902–5909

    Article  Google Scholar 

  2. Bolger JG, Kirsten FA, Ng LS (1978) Inductive power coupling for an electric highway system. In: Proceedings of IEEE 28th Vehicular Technology Society, vol 28, pp 137–144

    Google Scholar 

  3. Green AW, Boys JT (1994) 10 kHz inductively coupled power transfer concept and control. In Proceedings of 5th International Conference IEE Power Electron Variable-Speed Drivers, pp 694–699

    Google Scholar 

  4. Elliott GAJ, Boys JT, Green AW (1995) Magnetically coupled systems for power transfer to electric vehicles. In Proceedings of International Conference Power Electronics and Drive Systems, pp 797–801

    Google Scholar 

  5. Covic GA, Boys JT, Kissin MLG, LU HG (2007) A three-phase inductive power transfer system for roadway-powered vehicles. IEEE Trans Ind Electron 54(6):3370–3378

    Article  Google Scholar 

  6. Lee SW, Huh J, Park CB, Choi NS, Cho GH, Rim CT (2010) On-line electric vehicle using inductive power transfer system. IEEE Energy Conversion Congress and Exposition, pp 1598–1601

    Google Scholar 

  7. Suh NP, Cho DH, Rim CT (2010) Design of on-line electric vehicle (OLEV). In: Plenary lecture at the 2010 CIRP Design Conference

    Google Scholar 

  8. Huh J, Rim CT (2011) KAIST wireless electric vehicles-OLEV, JSAE Annual Congress, invited paper

    Google Scholar 

  9. Lee SW, Lee WY, Huh J, Park CB, Rim CT (2011) Active EMF cancellation method for I-type pick-up of on-line electric vehicles. IEEE Applied Power Electronics Conference & Exposition (APEC), pp 1980–1983

    Google Scholar 

  10. Huh J, Lee BH, Lee WY, Cho GH, Rim CT (2011) Characterization of novel inductive power transfer systems for on-line electric vehicles. IEEE Applied Power Electronics Conference and Exposition, pp 1975–1979

    Google Scholar 

  11. Huh J, Lee SW, Park CB, Cho GH, Rim CT (2010) High performance inductive power transfer system with narrow rail width for on-line electric vehicles. IEEE Energy Conversion Congress and Exposition, pp 1598–1601

    Google Scholar 

  12. Huh J, Lee SW, Lee WY, Cho GH, Rim Chun T (2011) Narrow-width inductive power transfer system for online electrical vehicles. IEEE Trans Power Electron 26(12):3666–3679

    Article  Google Scholar 

  13. Park C, Lee S, Cho GH, Rim CT (2012) Static and dynamic analyses of three-phase rectifier with LC input filter by Laplace phasor transformation.IEEE Energy Conversion Congress and Exposition, pp 1570–1577

    Google Scholar 

  14. Rim CT (1990) Analysis of linear switching systems using circuit transformations. Ph.D. dissertation, KAIST, Seoul

    Google Scholar 

  15. Rim CT, Hu DY, Cho GH (1990) Transformers as equivalent circuits for switches: General proofs and DQ transformation-based analyses. IEEE Trans Ind Appl 26(4):777–785

    Article  Google Scholar 

  16. Rim CT, Cho GH (1990) Phasor transformation and its application to the DC/AC analyses of frequency phase-controlled series resonant converters (SRC). IEEE Trans Power Electron 5:201–211

    Article  Google Scholar 

  17. Rim CT (1999) A complement of imperfect phasor transformation. Korea Power Electronics Conference, Seoul, pp 159–163

    Google Scholar 

  18. Rim CT, Choi NS, Cho GC, Cho GH (1994) A complete DC and AC analysis of three-phase controlled-current PWM rectifier using circuit DQ transformation. IEEE Trans Power Electron 9(4):390–396

    Article  Google Scholar 

  19. Rim Chun T (2011) Unified general phasor transformation for AC converters. IEEE Trans Power Electron 26(9):2465–2475

    Article  Google Scholar 

  20. White DC, Woodson HH (1959) Electromechanical Energy Conversion. Wiley, New York

    Google Scholar 

  21. Ngo KDT (1986) Low frequency characterization of PWM converter. IEEE Transactions on Power Electronics, vol PE-1, pp 223–230

    Google Scholar 

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Correspondence to Chun T. Rim .

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© 2016 Springer Science+Business Media Singapore

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Rim, C.T. (2016). Dynamics of Inductive Power Transfer Systems. In: Phasor Power Electronics. KAIST Research Series. Springer, Singapore. https://doi.org/10.1007/978-981-10-0536-7_12

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  • DOI: https://doi.org/10.1007/978-981-10-0536-7_12

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  • Publisher Name: Springer, Singapore

  • Print ISBN: 978-981-10-0535-0

  • Online ISBN: 978-981-10-0536-7

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