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A Transient Grid Security Control Algorithm Based on EMS System

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Security with Intelligent Computing and Big-data Services (SICBS 2018)

Part of the book series: Advances in Intelligent Systems and Computing ((AISC,volume 895))

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Abstract

The transient security control aims to effectively improve the stability of the grid system and prevent large-scale blackouts in the system. In this paper, based on the actual and effective grid data filtered from the EMS system, a transient grid security control algorithm is proposed which is used to solve the optimal power flow. This algorithm is decomposed into two algorithms (i.e., OPF algorithm and optimal control algorithm). In the iteration, the optimal control on the OPF operating point is used to obtain the active output limit of the relevant unit, and the differential equation constraint is transformed into the inequality constraint of the control variable, that is, the inequality constraint related to the number of faults is added, and then solve the problem alternately and finally get the solution. After considering the transient stability constraints, the algorithm proposed is feasible and effective, and has the advantages of reducing the computational burden and the scale of the problem.

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References

  1. Duncan Glover, J., Mulukutla, S.S.: Power system analysis and design, pp. 99–110. China Machine Press (2014)

    Google Scholar 

  2. Duan, J., Wang, C., Xu, H., et al.: Distributed control of inverter-interfaced microgrids based on consensus algorithm with improved transient performance. IEEE Trans. Smart Grid 99, 1 (2017)

    Article  Google Scholar 

  3. Peter, C., Yang, K.L.: Criterion for the optimal solution of an inventory model with a linear trend in demand. J. Inf. Optim. Sci. 20(2), 235–248 (1999)

    MathSciNet  MATH  Google Scholar 

  4. Wang, C., Xie, H., Bie, Z., et al.: Reliability evaluation of AC/DC hybrid power grid considering transient security constraints In: IEEE Conference on Automation Science and Engineering, pp. 1237–1242. IEEE (2018)

    Google Scholar 

  5. Singh, S.N., David, A.K.: Towards dynamic security-constrained congestion management in open power market. IEEE Power Eng. Rev. 20(8), 45–47 (2000)

    Article  Google Scholar 

  6. Fouad, A.: Dynamic security assessment practices in North America. IEEE Trans Power Syst. 3(3), 1310–1321 (1988)

    Article  Google Scholar 

  7. Fu, S.T., Chen, J.L., Hu, J.X., et al.: Implementation of an on-line dynamic security assessment program for the central China power system. Control Eng. Pract. 6, 1517–1524 (1998)

    Article  Google Scholar 

  8. Solanki, B.V., Bhattacharya, K., Cañizares, C.A.: A sustainable energy management system for isolated microgrids. IEEE Trans. Sustain. Energ. 8(4), 1507–1517 (2017)

    Article  Google Scholar 

  9. Yuanhuan, F.U., Yinhong, L.I., Xuan, H.E., et al.: Corrected transient analysis model of doubly fed induction generator with crowbar protection under grid fault. Proc. CSEE 37(16), 4591–4600 (2017)

    Google Scholar 

  10. Rei, A.M., Leite, D., Silva, A.M., Jardim, J.L., et al.: Static and dynamic aspects in bulk power system reliability evaluations. IEEE Trans. Power Syst. 15(1), 189–195 (2000)

    Article  Google Scholar 

  11. Gaushell, D.J., Darlington, H.T.: Supervisory control and data acquisition. Proc. IEEE 75(12), 1645–1658 (1987)

    Article  Google Scholar 

  12. Shuai, L.L., Tian, G.Y., Xiao-Lu, L.I., et al.: Vertical integration study on power grid model of remote terminal unit and monitor center. Jiangxi Electr. Power 134(6), 2860–2863 (2012)

    Google Scholar 

  13. Criel, M., Godefroid, M., Deckers, B., et al.: Evaluation of the Red Blood Cell advanced software application on the CellaVision DM96. Int. J. Lab. Hematol. 38(4), 366–374 (2016)

    Article  Google Scholar 

  14. Podmore, R., Giri, J.C., Gorenberg, M.P., et al.: An advanced dispatcher training simulator. IEEE Power Eng. Rev. PER-2(1), 19–20 (1982)

    Article  Google Scholar 

  15. Wang, D., Jiang, Y., Qiu, C., et al.: Research on the on-line dynamic security assessment system and application of Jiangsu power grid. Electric Power Eng. Technol. 1, 120–125 (2017)

    Google Scholar 

  16. Hsiao-Dong, C., Cheng-Shang, W., Hua, L.: Development of BCU classifiers for on-line dynamic contingency screening of electric power systems. Power Syst. 14(2), 660–666 (1999)

    Article  Google Scholar 

  17. Yi, K.K., Choo, J.B., Yoon, S.H., et al.: Development of wide area measurement and dynamic security assessment systems in Korea. In: Proceedings of Power Engineering Society Summer Meeting, Vanouver, Canada, vol. 3, pp. 1498–1499 (2001)

    Google Scholar 

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Su, Y., Liu, S., Liang, Z., Qiao, Z., Li, X. (2020). A Transient Grid Security Control Algorithm Based on EMS System. In: Yang, CN., Peng, SL., Jain, L. (eds) Security with Intelligent Computing and Big-data Services. SICBS 2018. Advances in Intelligent Systems and Computing, vol 895. Springer, Cham. https://doi.org/10.1007/978-3-030-16946-6_29

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