Software Defined Communication Network Reliability for Secondary Distribution Power Grid

Yona Andegelile, Hellen Maziku, Nerey Mvungi, Mussa Kissaka

Abstract


Operations automation of Secondary Distribution Electrical Power Grid (SDEPG) requires reliable communication network to facilitate end to end power grid visibility and control through various sensors and actuators deployed across the power grid network. Available solutions to enhance communication network reliability have addressed mostly requirements for transmission and primary distribution portions of the grid, which use wired communication network technologies. The nature of SDEPG demands reliability solutions to incorporate a combination of wired and wireless technologies.

In this research we propose an SDN based, cross layers resilient communication network for SDEPG. The solution segments the SDEPG into three parts, namely access, aggregation and core networks. Since aggregation and core comprises of wired network, we adopt the resilience approach proposed by previous researchers. As for access network that is largely comprised of wireless network, we propose an algorithm that modifies the Radio Frequency (RF) parameters of failover Access Points (AP) to optimally cover abandoned clients when the serving AP fails.

The proposed solution was simulated using OPNET, that contain NS3 for the network simulation and mininet for SDN and was deployed in virtualized HP server. The simulation comprised of two access points and two stations. Traffic flow was initiated between two stations. With different failure scenarios simulated, our results revealed that in case of Access Point (AP) failure, the SDN controller seamlessly redirects users to a nearby AP while maintaining acceptable bandwidth, latency and availability


Keywords


Software defined networking; Resilience; Secondary Distribution Electrical Power Grid

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References


A. M. Costa, V. J. Garcia, P. M. França, and C. L. Filho, “A new method for planning secondary distribution networks,†Ser. Energy Power Syst., no. May 2014, pp. 437–442, 2014.

A. Zidan et al., “Fault Detection, Isolation, and Service Restoration in Distribution Systems,†IEEE Trans. Smart Grid, pp. 1–16, 2016.

V. Kounev, M. Lévesque, D. Tipper, and T. Gomes, “On smart grid communications reliability,†in 2015 11th International Conference on the Design of Reliable Communication Networks, DRCN 2015, 2015, pp. 33–40.

N. Feamster, J. Rexford, and E. Zegura, “The Road to SDN: An Intellectual History of Programmable Networks,†ACM SIGCOMM Comput. Commun. Rev., vol. 44, pp. 87–98, 2014.

V. Lopez, J. P. F. Palacios, T. Szyrkowiec, M. Chamania, and D. Siracusa, “Multi-layer resilience schemes and their control plane support,†DRCN 2017 - 13th Int. Conf. Des. Reliab. Commun. Networks, vol. 2017, pp. 86–92, 2017.

J. Shamsi and M. Brockmeyer, “QoSMap: Achieving quality and resilience through overlay construction,†in Proceedings of the 2009 4th International Conference on Internet and Web Applications and Services, ICIW 2009, 2009, no. ii, pp. 58–67.

M. H. Rehmani, A. Davy, B. Jennings, and C. Assi, “Software Defined Networks based Smart Grid Communication: A Comprehensive Survey,†IEEE Commun. Surv. Tutorials, pp. 1–1, 2019.

ITU-RadioCommuncation, “Annex 9 to Working Party 5A Chairman ’ s Report ELEMENTS FOR A WORKING DOCUMENT TOWARDS A POSSIBLE PRELIMINARY DRAFT NEW REPORT ON UTILITY COMMUNICATION NETWORKS REQUIREMENTS,†2018.

H. Maziku and S. Shetty, “Software Defined Networking enabled resilience for IEC 61850-based substation communication systems,†2017 Int. Conf. Comput. Netw. Commun. ICNC 2017, pp. 690–694, 2017.

A. S. Active and P. Filter, “Transmission and Distribution Components,†Quadrenn. Technol. Rev. 2015, no. January, pp. 1–22, 2015.

E. Germano Da Silva, L. A. Dias Knob, J. A. Wickboldt, L. P. Gaspary, L. Z. Granville, and A. Schaeffer-Filho, “Capitalizing on SDN-based SCADA systems: An anti-eavesdropping case-study,†Proc. 2015 IFIP/IEEE Int. Symp. Integr. Netw. Manag. IM 2015, pp. 165–173, 2015.

V. Lopez, J. Pedro, F. Palacios, T. I. D. Gcto, and D. Siracusa, “Multi-layer resilience schemes and their control plane support,†2017, vol. 2017, pp. 86–92.

K. Nahida et al., “Handover Based on AP Load in Software Defined Wi-Fi Systems,†vol. 19, no. 6, pp. 596–604, 2017.

J. Q. Filho, N. Cunha, R. Lima, E. Anjos, and F. Matos, “A Software Defined Wireless Networking Approach for Managing Handoff in IEEE 802.11 Networks,†Wirel. Commun. Mob. Comput., vol. 2018, 2018.

W. S. Kim, S. H. Chung, C. W. Ahn, and M. R. Do, “Seamless handoff and performance anomaly reduction schemes based on openflow access points,†Proc. - 2014 IEEE 28th Int. Conf. Adv. Inf. Netw. Appl. Work. IEEE WAINA 2014, pp. 316–321, 2014.

N. Dorsch, F. Kurtz, and C. Wietfeld, “Enabling hard service guarantees in Software-Defined Smart Grid infrastructures,†Comput. Networks, vol. 147, pp. 112–131, 2018.

A. Aydeger, K. Akkaya, M. H. Cintuglu, A. S. Uluagac, and O. Mohammed, “Software defined networking for resilient communications in Smart Grid active distribution networks,†2016 IEEE Int. Conf. Commun. ICC 2016, 2016.

J. P. G. Sterbenz et al., “Resilience and survivability in communication networks: Strategies, principles, and survey of disciplines,†Comput. Networks, vol. 54, no. 8, pp. 1245–1265, 2010.

P. Smith et al., “Network resilience: A systematic approach,†IEEE Commun. Mag., vol. 49, no. 7, pp. 88–97, 2011.

A. Modarresi, S. Gangadhar, and J. P. G. Sterbenz, “A framework for improving network resilience using SDN and fog nodes,†Proc. 2017 9th Int. Work. Resilient Networks Des. Model. RNDM 2017, pp. 1–7, 2017.

F. Kurtz and C. Wietfeld, “Advanced Controller Resiliency in Software-Defined Networking Enabled Critical Infrastructure Communications,†in Advanced controller resiliency in software-defined networking enabled critical infrastructure communications, 2017, pp. 673–678.

M. H. Rehmani, F. Akhtar, A. Davy, and B. Jennings, “Achieving Resilience in SDN-Based Smart Grid: A Multi-Armed Bandit Approach,†2018 4th IEEE Conf. Netw. Softwarization Work. NetSoft 2018, pp. 105–113, 2018.

L. Ren, “Resilient Microgrids through Software-Defined Networking Resilient Microgrids through Software-Defined,†2017.

K. De Craemer and G. Deconinck, “Analysis of State-of-the-art Smart Metering Communication Standards,†Proc. 5th Young Res. Symp., pp. 1–6, 2010.

C. J. Wallnerström, P. Hilber, and S. Stenberg, “Fault Management at a Distribution System Operator,†2012, no. June, pp. 350–355.

M. Wang, X. Niu, L. An, and J. Li, “Research on performance evaluation method of effective assets of power grid based on value engineering,†E3S Web Conf., vol. 118, pp. 3–6, 2019.

M. Kuzlu, M. Pipattanasomporn, and S. Rahman, “Communication network requirements for major smart grid applications in HAN, NAN and WAN,†Comput. Networks, 2014.

N. Gunantara, P. K. Sudiarta, A. A. N. A. I. Prasetya, A. Dharma, and I. N. Gde Antara, “Measurements of the Received Signal Level and Service Coverage Area at the IEEE 802.11 Access Point in the Building,†J. Phys. Conf. Ser., vol. 989, no. 1, 2018.




DOI (PDF): https://doi.org/10.20508/ijsmartgrid.v4i3.114.g97

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