skip to main content
10.1145/3386415.3387019acmotherconferencesArticle/Chapter ViewAbstractPublication PagesiciteeConference Proceedingsconference-collections
research-article

Transient Current Limit Control to Transformer Short Circuit based on Harmonics Voltage Injection Method

Authors Info & Claims
Published:30 May 2020Publication History

ABSTRACT

In the process of transformer operation, the main reason of transformer damage caused by the peak transient impulse current when the bus side is short circuited is that limiting the transient current component when the transformer is short circuited is of great significance to protect the safe operation of the transformer. Based on the series compensation circuit, this paper analyzes the mechanism of transformer short-circuit transient current component limitation, proposes a high-order harmonic injection control strategy and algorithm, and verifies the correctness of the control strategy and algorithm through calculation and simulation.

References

  1. Styvaktakis, E.; Bollen, M.H.J., "Signatures of voltage dips: transformer saturation and multistage dips", Power Delivery, IEEE Transactions on, Volume: 18, Issue: 1, Jan 2003, Pages:265--270Google ScholarGoogle ScholarCross RefCross Ref
  2. Liu X, Wang P, Loh P C. A Hybrid AC/DC Microgrid and Its Coordination Control[J]. IEEE Transactions on Smart Grid, 2011, 2(2): 278--286Google ScholarGoogle ScholarCross RefCross Ref
  3. Loh. P. C, Li. D, Chai. Y. K, et al. Autonomous Operation of Hybrid Microgrid With AC and DC Subgrids[J]. IEEE Transactions on Power Electronics, 2013, 28(5): 2214--2223.Google ScholarGoogle ScholarCross RefCross Ref
  4. Y. Zhang, C. Qu. Table-Based Direct Power Control for Three-Phase AC/DC Converters Under Unbalanced Grid Voltages[J]. IEEE Transactions on Power Electronics, 2015, 30(12): 7090--7099.Google ScholarGoogle ScholarCross RefCross Ref
  5. Foruzan. E, Algrain. M. C, Asgarpoor. S. Low-voltage ride-through simulation for microgrid systems[C]//IEEE International Conference on Electro Information Technology (EIT), Lincoln, NE, 2017: 260--264.Google ScholarGoogle Scholar
  6. R. A. J. Amalorpavaraj, P. Kaliannan, S. Padmanaban, et al. Improved Fault Ride Through Capability in DFIG Based Wind Turbines Using Dynamic Voltage Restorer With Combined Feed-Forward and Feed-Back Control[J]. IEEE Access, 2017, 5: 20494--20503.Google ScholarGoogle ScholarCross RefCross Ref
  7. L. Chen et al. Comparison of Superconducting Fault Current Limiter and Dynamic Voltage Restorer for LVRT Improvement of High Penetration Microgrid[J]. IEEE Transactions on Applied Superconductivity, 2017, 27(4): 1---7.Google ScholarGoogle Scholar
  8. S. Gao, X. Lin, Y. Kang, Y. Duan and J. Qiu. Mitigation of inrush current in dynamic voltage restorer injection transformers[C]//IEEE Energy onversion Congress and Exposition (ECCE). Raleigh, NC, 2012, pp. 4093--4098.Google ScholarGoogle Scholar
  9. S. B. Naderi, M. Negnevitsky, A. Jalilian, M. T. Hagh and K. M. Muttaqi. Voltage sag compensation of point of common coupling for low voltage ride-through enhancment of inverter interfaced DG using bridge type FCL[C]//Australasian Universities Power Engineering Conference (AUPEC). Wollongong, NSW, 2015, pp. 1--6.Google ScholarGoogle Scholar
  10. N.H. Wooley, L. Morgan, Ashok Sundaram, wade Malcolm, "Experiecne with an inverter-based dynamic Voltage restorer", IEEE Trans on Power Delivery, volume:14,no.3, 1999.7Google ScholarGoogle Scholar
  11. Sang-Joon Lee, Hyosung Kim, Seung-Ki Sul. "A Novel Control Method for the Compensation Voltages in Dynamic Voltage Restorers". IEEE Applied Power Electronics Conference and Exposition, 2004. APEC '04. Nineteenth Annual, Vol 1:614--620 Vol.. Conference Name:ACM Woodstock conferenceGoogle ScholarGoogle Scholar

Recommendations

Comments

Login options

Check if you have access through your login credentials or your institution to get full access on this article.

Sign in
  • Published in

    cover image ACM Other conferences
    ICITEE '19: Proceedings of the 2nd International Conference on Information Technologies and Electrical Engineering
    December 2019
    870 pages
    ISBN:9781450372930
    DOI:10.1145/3386415

    Copyright © 2019 ACM

    Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

    Publisher

    Association for Computing Machinery

    New York, NY, United States

    Publication History

    • Published: 30 May 2020

    Permissions

    Request permissions about this article.

    Request Permissions

    Check for updates

    Qualifiers

    • research-article
    • Research
    • Refereed limited
  • Article Metrics

    • Downloads (Last 12 months)1
    • Downloads (Last 6 weeks)0

    Other Metrics

PDF Format

View or Download as a PDF file.

PDF

eReader

View online with eReader.

eReader