Details

Title

Design and application of comprehensive evaluation index system of smart grid based on coordinated planning of major network and power distribution network

Journal title

Archives of Electrical Engineering

Yearbook

2021

Volume

vol. 70

Issue

No 1

Affiliation

Ning, Guangtao : Power Grid Planning and Design Research Center, Hainan Power Grid Co., Ltd., China ; Fang, Bing : Power Grid Planning and Design Research Center, Hainan Power Grid Co., Ltd., China ; Qin, Dan : Power Grid Planning and Design Research Center, Hainan Power Grid Co., Ltd., China ; Liang, Yafeng : Power Grid Planning and Design Research Center, Hainan Power Grid Co., Ltd., China ; Zheng, Lijuan : Tellhow Software Co., Ltd, China

Authors

Keywords

coordinated planning ; index system ; major network ; power distribution network ; smart power grid

Divisions of PAS

Nauki Techniczne

Coverage

103-113

Publisher

Polish Academy of Sciences

Bibliography

[1] Perles A., Camilleri G., Croteau D., Principle and evaluation of a self-adaptive multi-agent system for state estimation of electrical distribution network, World Congress on Sustainable Technologies, London, UK (2016), DOI: 10.1109/WCST.2016.7886584.
[2] Erol-Kantarci M., Mouftah H.T., Energy-Efficient Information and Communication Infrastructures in the Smart Grid: A Survey on Interactions and Open Issues, IEEE Communications Surveys and Tutorials, vol. 17, no. 1, pp. 179–197 (2015).
[3] Sroka K., Złotecka D., The risk of large blackout failures in power systems, Archives of Electrical Engineering, vol. 68, no. 2, pp. 411–426 (2019).
[4] Liang F., Lv X., Liu J., ZhangW., Liu X.F., Gao B.T., Evaluation of investment projects on distribution network based on fuzzy algorithms, 2015 IEEE International Conference on CYBER Technology in Automation, Control, and Intelligent Systems (CYBER), Shenyang, China (2015), DOI: 10.1109/CYBER. 2015.7288038.
[5] Liu H.Q., Lin W.J., Li Y.C., Ultra-short-term wind power prediction based on copula function and bivariate EMD decomposition algorithm, Archives of Electrical Engineering, vol. 69, no. 2, pp. 271–286 (2020).
[6] An K., Liu H., Zhu H., Dong Z.Y., Hur K., Evaluation of conservation voltage reduction with analytic hierarchy process: a decision support framework in grid operations planning, Energies, vol. 9, no. 12, pp. 761–766 (2016).
[7] Wei Z.C., Zhao F.Z., Meng X.L., Song X.H., Ye Z.J., Sheng Y., Research on hierarchical evaluation index system of intelligent level in smart distribution grid, Advanced Materials Research, vol. 1092–1093, pp. 443–449 (2015).
[8] Cai B., Liu Y., Ma Y., Huang L., Liu Z., A framework for the reliability evaluation of grid-connected photovoltaic systems in the presence of intermittent faults, Energy, vol. 93, pp. 1308–1320 (2015).
[9] Xue M., Zhao B., Zhang X., Jiang Q., Integrated plan and evaluation of grid-connected microgrid, Automation of Electric Power Systems, vol. 39, no. 3, pp. 6–13 (2015).
[10] Azeroual M., Lamhamdi T., El Moussaoui H., El Markhi H., Intelligent energy management system of a smart microgrid using multiagent systems, Archives of Electrical Engineering, vol. 69, no. 1, pp. 23–38 (2020).
[11] Fadel E., Gungor V.C., Nassef L., Akkari N., Malik A., Almasri S., Akyildiz I.F., A survey on wireless sensor networks for smart grid, Computer Communications, vol. 71, no. NOV. 1, pp. 22–33 (2015).
[12] Bayindir R., Colak I., Fulli G., Demirtas K., Smart grid technologies and applications, Renewable and Sustainable Energy Reviews, vol. 66, no. DEC, pp. 499–516 (2016).
[13] Zhou X.S., Kong X.L., Ma Y.J., The Overview of Smart Grid, Applied Mechanics and Materials, vol. 552, pp. 103–106 (2014).
[14] He Y., Wu J., Ge Y., Li D.Z., Yan H.G., Research on Model and Method of Maturity Evaluation of Smart Grid Industry, International Conference on Life System Modeling and Simulation International Conference on Intelligent Computing for Sustainable Energy and Environment, vol. 763 (2017).
[15] Yang Z., Wu R., Yang J., Long K., You P., Economical Operation of Microgrid With Various Devices Via Distributed Optimization, IEEE Transactions on Smart Grid, vol. 7, no. 2, pp. 857–867 (2016).
[16] Li Y.B., Li Y., LiW.G., Application Credibility Theory in the Smart Grid Information Network Security Assessment, Advanced Materials Research, vol. 960–961, pp. 841–844 (2014).
[17] Vineetha C.P., Babu C.A., Smart grid challenges, issues and solutions, 2014 International Conference on Intelligent Green Building and Smart Grid (IGBSG), Taipei, Taiwan (2014), DOI: 10.1109/IGBSG. 2014.6835208.
[18] Ou Q., Zhen Y., Li X., Zhang Y., Zeng L., Application of Internet of Things in Smart Grid Power Transmission, IEEE 2012 Third FTRA International Conference on Mobile, Ubiquitous, and Intelligent Computing (MUSIC) – Vancouver, Canada (2012.06.26-2012.06.28) 2012 Third FTRA International Conference on Mobile, Ubiquitous, and Intelligent, pp. 96–100 (2012), DOI: 10.1109/MUSIC.2012.24.
[19] Chen P., Hu P., Selection of the Intelligent Power Distribution Cabinets for the Computer Room of Video Monitoring Data Center, Applied Mechanics and Materials, vol. 416–417, pp. 1076–1079 (2013).
[20] Strand J., Carson R.T., Navrud S., Ortiz-Bobea A., Vincent J., Using the Delphi method to value protection of the Amazon rainforest, Ecological Economics, vol. 131, pp. 475–484 (2017).

Date

2021.03.25

Type

Article

Identifier

DOI: 10.24425/aee.2021.136055

Source

Archives of Electrical Engineering; 2021; vol. 70; No 1; 103-113
×