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Stefan cel Mare
University of Suceava
Faculty of Electrical Engineering and
Computer Science
13, Universitatii Street
Suceava - 720229
ROMANIA

Print ISSN: 1582-7445
Online ISSN: 1844-7600
WorldCat: 643243560
doi: 10.4316/AECE


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Clarivate Analytics published the InCites Journal Citations Report for 2023. The InCites JCR Impact Factor of Advances in Electrical and Computer Engineering is 0.700 (0.700 without Journal self-cites), and the InCites JCR 5-Year Impact Factor is 0.600.

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SCOPUS published the CiteScore for 2022, computed by using an improved methodology, counting the citations received in 2019-2022 and dividing the sum by the number of papers published in the same time frame. The CiteScore of Advances in Electrical and Computer Engineering for 2022 is 2.0. For "General Computer Science" we rank #134/233 and for "Electrical and Electronic Engineering" we rank #478/738.

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2022-Jun-16
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  1/2015 - 2

 HIGHLY CITED PAPER 

Fault Correspondence Analysis in Complex Electric Power Systems

WANG, C. See more information about WANG, C. on SCOPUS See more information about WANG, C. on IEEExplore See more information about WANG, C. on Web of Science, ZHANG, Y. See more information about ZHANG, Y. on SCOPUS See more information about ZHANG, Y. on SCOPUS See more information about ZHANG, Y. on Web of Science
 
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Download PDF pdficon (596 KB) | Citation | Downloads: 1,251 | Views: 4,137

Author keywords
synchronized phasor measurement unit, PMU, backup protection, smart grid, fault correspondence analysis, noise

References keywords
power(24), systems(14), grid(8), electric(8), area(8), smart(7), protection(7), wide(6), network(5), energy(5)
Blue keywords are present in both the references section and the paper title.

About this article
Date of Publication: 2015-02-28
Volume 15, Issue 1, Year 2015, On page(s): 11 - 16
ISSN: 1582-7445, e-ISSN: 1844-7600
Digital Object Identifier: 10.4316/AECE.2015.01002
Web of Science Accession Number: 000352158600002
SCOPUS ID: 84924803936

Abstract
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Full text preview
Wide area measurement system (WAMS) mainly serves for the requirement of time synchronization in complex electric power systems. The analysis and control of power system mostly depends on the measurement of state variables, and WAMS provides the basis for dynamic monitoring of power system by these measurements, which can also satisfy the demands of observable, controllable, real-time analysis and decision, self-adaptive etc. requested by smart grid. In this paper, based on the principles of fault correspondence analysis, by calculating row characteristic which represents nodal electrical information and column characteristic which represents acquisition time information, we will conduct intensive research on fault detection. The research results indicate that the fault location is determined by the first dimensional variable, and the occurrence time of fault is determined by the second dimensional variable. The research in this paper will contribute to the development of future smart grid.


References | Cited By  «-- Click to see who has cited this paper

[1] M. Yigit, V. Cagri Gungor and S. Baktir, "Cloud computing for smart grid applications," Computer Networks, vol.70, pp.312-329, Sep. 2014.
[CrossRef] [Web of Science Times Cited 108] [SCOPUS Times Cited 147]


[2] Y. C. Li and Y. L. Wang, "State summation for detecting false data attack on smart grid," International Journal of Electrical Power & Energy Systems, vol.57, pp.156-163, May 2014.
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[3] G. A. Pagani and M. Aiello, "Power grid complex network evolutions for the smart grid," Physica A: Statistical Mechanics and its Applications, vol.396, pp.248-266, Feb. 2014.
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[4] P. Kundu and A. K. Pradhan, "Wide area measurement based protection support during power swing," International Journal of Electrical Power & Energy Systems, vol.63, pp.546-554, Dec. 2014.
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[CrossRef] [Web of Science Times Cited 28] [SCOPUS Times Cited 31]


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[7] Y. G. Zhang and Z. P. Wang, "New fault discrimination under the influence of Rayleigh noise," Advances in Electrical and Computer Engineering, vol.13, pp.27-32, Aug. 2013.
[CrossRef] [Full Text] [Web of Science Times Cited 6] [SCOPUS Times Cited 5]


[8] J. Ma, T. Wang, W. Y. Yan, Z. P. Wang, "Design of wide-area robust damping controller based on the non-convex stable region for inter-area oscillations," International Journal of Electrical Power and Energy Systems, vol.55, pp.473-480, Feb. 2014.
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[9] E. A. Zamora-Cárdenas, B. A. Alcaide-Moreno and C. R. Fuerte-Esquivel, "State estimation of flexible AC transmission systems considering synchronized phasor measurements," Electric Power Systems Research, vol.106, pp.120-133, Jan. 2014.
[CrossRef] [Web of Science Times Cited 16] [SCOPUS Times Cited 20]


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[CrossRef] [Web of Science Times Cited 5] [SCOPUS Times Cited 4]


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[13] S. M. Hashemi, M. T. Hagh and H. Seyedi, "A novel backup distance protection scheme for series-compensated transmission lines," IEEE Transactions on Power Delivery, vol.29, pp.699-707, Apr. 2014.
[CrossRef] [Web of Science Times Cited 35] [SCOPUS Times Cited 43]


[14] P. K. Nayak, A. K. Pradhan and P. Bajpai, "Wide-area measurement-based backup protection for power network with series compensation," IEEE Transactions on Power Delivery, vol.29, pp.1970-1977, Aug. 2014.
[CrossRef] [Web of Science Times Cited 76] [SCOPUS Times Cited 83]


[15] X. Y. Tong, X. R. Wang, R. Wang, F. Huang, X. Y. Dong, K. M. Hopkinson and G. Y. Song, "The study of a regional decentralized peer-to-peer negotiation-based wide-area backup protection multi-agent system," IEEE Transactions on Smart Grid, vol.4, pp.1197-1206, Jun. 2013.
[CrossRef] [Web of Science Times Cited 51] [SCOPUS Times Cited 53]


[16] P.V. Navalkar and S. A. Soman, "Secure remote backup protection of transmission lines using synchrophasors," IEEE Transactions on Power Delivery, vol.26, pp.87-96, Jan. 2011.
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[18] Y. G. Zhang and Z. P. Wang, "Bifurcation criterion of faults in complex nonlinear systems," Physics Letters A, vol.378, pp.18-19, Mar. 2014.
[CrossRef] [Web of Science Times Cited 5] [SCOPUS Times Cited 5]


[19] Y. G. Zhang and Z. P. Wang, "A novel approach to fault detection in complex electric power systems," Advances in Electrical and Computer Engineering, vol.14, pp.27-32, Aug. 2014.
[CrossRef] [Full Text] [Web of Science Times Cited 9] [SCOPUS Times Cited 8]


[20] Y. G. Zhang, Z. Zhao and Z. P. Wang, "Comprehensive detection and isolation of fault in complicated electrical engineering," Electronics and Electrical Engineering, vol.19, pp. 31-34, Nov. 2013.
[CrossRef] [Web of Science Times Cited 4] [SCOPUS Times Cited 4]


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[23] D. Johnson, Applied Multivariate Methods for Data Analysts, CA: Duxbury Press, Pacific Grove, 1998.

[24] S. Misra, P. Venkata Krishna, V. Saritha, H. Agarwal and A. Ahuja, "Learning automata-based multi-constrained fault-tolerance approach for effective energy management in smart grid communication network," Journal of Network and Computer Applications, vol.44, pp.212-219, Sep. 2014.
[CrossRef] [Web of Science Times Cited 18] [SCOPUS Times Cited 24]


[25] M. Yigit, V. Cagri Gungor, G. Tuna, M. Rangoussi and E. Fadel, "Power line communication technologies for smart grid applications: A review of advances and challenges," Computer Networks, vol.70, pp.366-383, Sep. 2014.
[CrossRef] [Web of Science Times Cited 99] [SCOPUS Times Cited 126]


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[CrossRef] [Web of Science Times Cited 5] [SCOPUS Times Cited 6]


[27] IEEE Std C37.118TM-2005, IEEE Standard for Synchrophasors for Power Systems. New York: IEEE, 2006.



References Weight

Web of Science® Citations for all references: 795 TCR
SCOPUS® Citations for all references: 949 TCR

Web of Science® Average Citations per reference: 28 ACR
SCOPUS® Average Citations per reference: 34 ACR

TCR = Total Citations for References / ACR = Average Citations per Reference

We introduced in 2010 - for the first time in scientific publishing, the term "References Weight", as a quantitative indication of the quality ... Read more

Citations for references updated on 2024-11-23 18:34 in 158 seconds.




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