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Research on Data Asset Management of Electricity Industry Based on Blockchain

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Published:29 June 2021Publication History

ABSTRACT

Electricity data, which is generated in electricity Internet of things (IOT), is the important asset for electricity enterprises to discover consumer values and raise economy benefits. Due to the commercial value of electricity data and the high demands of data management in electricity IOT, this paper provides a novel framework for management of electricity data. This framework is developed based on blockchain, according to the concept of data asset management. The proposed framework contains five blockchain based modules to provide electricity enterprises various kinds of data services and management. Our framework contributes to offer a novel solution for securely managing and efficiently utilizing electricity data.

References

  1. Li, M., Zhang, K., Liu, J., (2020). Blockchain-based anomaly detection of electricity consumption in smart grids. Pattern Recognition Letters, 138: 476-482.Google ScholarGoogle ScholarCross RefCross Ref
  2. Dang, C., Zhang, J., Kwong, C. P., (2019). Demand Side Load Management for Big Industrial Energy Users Under Blockchain-Based Peer-to-Peer Electricity Market. IEEE Transactions on Smart Grid, 10(6): 6426-6435.Google ScholarGoogle ScholarCross RefCross Ref
  3. Chen, X., & Zhang, X. (2019). Secure Electricity Trading and Incentive Contract Model for Electric Vehicle Based on Energy Blockchain. IEEE Access, 7: 178763-178778.Google ScholarGoogle ScholarCross RefCross Ref
  4. Zhang, S., Pu, M., Wang, B., (2019). A Privacy Protection Scheme of Microgrid Direct Electricity Transaction Based on Consortium Blockchainand Continuous Double Auction. IEEE Access, 7: 151746-151753.Google ScholarGoogle ScholarCross RefCross Ref
  5. Mezquita, Y., Gazafroudi, A. S., Corchado, J. M., (2019). Multi-Agent Architecture for Peer-to-Peer Electricity Trading based on Blockchain Technology. In: Proceedings of 27th International Conference on Information, Communication and Automaton Techlnology (ICAT), Sarajevo, Bosnia & Herceg, Oct. 10-13 2019.Google ScholarGoogle ScholarCross RefCross Ref
  6. Fan, T., He, Q., Nie, E., (2017). A study of pricing and trading model of Blockchain & Big data-based Energy-Internet electricity. In: Proceedings of 3rd International Conference on Environment Science and Material Application (ESMA), Chongqing, China, Nov. 25-26 2017.Google ScholarGoogle Scholar
  7. Kim, G., Park, J., & Ryou, J. (2018). A Study on Utilization of Blockchain for Electricity Trading in Microgrid. In: Proceedings of IEEE International Conference Big Data and Smart Computing (BigComp), Shanghai, China, Jan. 15-17 2018.Google ScholarGoogle ScholarCross RefCross Ref
  8. Ghorbanian, M., Dolatabadi, S. H., Siano, P., (2020). Methods for Flexible Management of Blockchain-Based Cryptocurrencies in Electricity Markets and Smart Grids. IEEE Transactions on Smart Grid, 11(5): 4227-4235.Google ScholarGoogle ScholarCross RefCross Ref
  9. Zahid, M. Ali, I., Khan, R. J., U. h., (2019). Blockchain based balance of electricity demand and supply. In: Proceedings of 14th IEEE International Conference on Broadband Wireless Computing, Communication, and Applications (BWCCA), Antwerp, Belgium, Nov. 07-09 2019.Google ScholarGoogle Scholar
  10. Luo, F., Dong, Z. Y., Liang, G., (2019). A Distributed Electricity Trading System in Active Distribution Networks Based on Multi-Agent Coalition and Blockchain. IEEE Transactions on Power Systems, 34(5): 4097-4108.Google ScholarGoogle ScholarCross RefCross Ref
  11. Diestelmeier, L. (2019). Changing power: Shifting the role of electricity consumers with blockchain technology - policy implications for EU electricity law. Energy Policy, 128: 189-196.Google ScholarGoogle ScholarCross RefCross Ref
  12. Dick, C. I., & Praktiknjo, A. (2019). Blockchain Technology and Electricity Wholesale Markets: Expert Insights on Potentials and Challenges for OTC Trading in Europe. Energies, 12(5).Google ScholarGoogle Scholar
  13. Wang, J., Wang, Q., Zhou, N., (2017). A Novel Electricity Transaction Mode of Microgrids Based on Blockchain and Continuous Double Auction. Enegies, 10(12).Google ScholarGoogle Scholar
  14. Sikorski, J. J., Haughton, J., & Kraft, M. (2017). Blockchain technology in the chemical industry: Machine-to-machine electricity market. Applied Energy, 195: 234-246.Google ScholarGoogle ScholarCross RefCross Ref
  15. Xie, P., Zhu, J., Li, X., (2018). Conceptual Framework of Blockchain-based Electricity Trading for Neighborhood Renewable Energy. In: Proceedings of 2nd IEEE Conference on Energy Internet and Energy System Integration (EI2), Beijing, China, Oct. 20-22 2018.Google ScholarGoogle ScholarCross RefCross Ref
  16. Tanaka, K., Abe, R., Triet, N. V., (2018). A Proposal on an Electricity Trading Platform Using Blockchain. In: Proceedings of 25th ISPE Inc International Conference on Transdisciplinary Engineering, Modena, Italy, Jul. 03-06 2018.Google ScholarGoogle Scholar
  17. De Villiers, A., & Cuffe, P. (2020). A Three-Tier Framework for Understanding Disruption Trajectories for Blockchain in the Electricity Industry. IEEE Access, 8: 65670-65682.Google ScholarGoogle ScholarCross RefCross Ref
  18. Fell, M. J., Schneiders, A., & Shipworth, D. (2019). Consumer Demand for Blockchain-Enabled Peer-to-Peer Electricity Trading in the United Kingdom: An Online Survey Experiment. Energies, 12(20).Google ScholarGoogle Scholar
  19. Buth, M. C., Wieczorek, A. J., & Verbong, G. P. J. (2019). The promise of peer-to-peer trading? The potential impact of blockchain on the actor configuration in the Dutch electricity system. Energy Research & Social Science, 53: 194-205.Google ScholarGoogle ScholarCross RefCross Ref
  20. Richter, B., Mengelkamp, E., & Weinhardt, C. (2018). Maturity of Blockchain Technology in Local Electricity Markets. In: Proceedings of 15th International Conference on the European Energy Market (EEM), Lodz, Poland, Jun. 27-29 2018Google ScholarGoogle ScholarCross RefCross Ref

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  • Published in

    cover image ACM Other conferences
    ASSE '21: 2021 2nd Asia Service Sciences and Software Engineering Conference
    February 2021
    143 pages
    ISBN:9781450389082
    DOI:10.1145/3456126

    Copyright © 2021 ACM

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    Publication History

    • Published: 29 June 2021

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