TY - JOUR
T1 - Virtualising redundancy of power equipment controllers using software-defined networking
AU - von Tüllenburg, F.
AU - Dorfinger, P.
AU - Veichtlbauer, A.
AU - Pache, U.
AU - Langthaler, O.
AU - Kapoun, H.
AU - Bischof, C.
AU - Kupzog, F.
N1 - Cited By :2
Export Date: 14 December 2023
Correspondence Address: von Tüllenburg, F.; Advanced Networking Center, Austria; email: [email protected]
Funding details: 858873
Funding details: Bundesministerium für Verkehr, Innovation und Technologie, BMVIT
Funding text 1: The presented work is conducted in the research project VirtueGrid, which is funded by the Austrian Climate and Energy Fund (KLIEN) within the program e!MISSION (project number 858873). Publication of this supplement was funded by Austrian Federal Ministry for Transport, Innovation and Technology.
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PY - 2019/9/27
Y1 - 2019/9/27
N2 - Power system automation is heavily dependent on the reliable interconnection of power system field equipment and centralised control applications. Particularly important to achieve reliability in automated power systems is the redundant connection of field equipment controllers. Today, the fundamental redundancy management and switch-over processes are handled by the power system control applications itself. This, however, increases the complexity of the control systems and leads to an intersection of concerns. Consequently, the design and the implementation of field equipment controller redundancy is time-consuming and cost-intensive. In this paper, we propose the implementation of a redundancy virtualisation layer for power system controllers based on software-defined networking (SDN). The goal is to relieve the control applications from managing field level redundancy. Thus, our SDN approach allows to detect gateway failures and to perform transparent switch-overs. This significantly simplifies the configuration of the control application with redundant components and finally leads to more flexible and simplified redundancy design, deployment and operation. Arbitrary redundancy topologies, such as triple-controller-redundancy can be implemented without modifying the control applications. © 2019, The Author(s).
AB - Power system automation is heavily dependent on the reliable interconnection of power system field equipment and centralised control applications. Particularly important to achieve reliability in automated power systems is the redundant connection of field equipment controllers. Today, the fundamental redundancy management and switch-over processes are handled by the power system control applications itself. This, however, increases the complexity of the control systems and leads to an intersection of concerns. Consequently, the design and the implementation of field equipment controller redundancy is time-consuming and cost-intensive. In this paper, we propose the implementation of a redundancy virtualisation layer for power system controllers based on software-defined networking (SDN). The goal is to relieve the control applications from managing field level redundancy. Thus, our SDN approach allows to detect gateway failures and to perform transparent switch-overs. This significantly simplifies the configuration of the control application with redundant components and finally leads to more flexible and simplified redundancy design, deployment and operation. Arbitrary redundancy topologies, such as triple-controller-redundancy can be implemented without modifying the control applications. © 2019, The Author(s).
KW - Failover
KW - Redundancy
KW - Smart grid
KW - Software-defined networking
KW - Controllers
KW - Electric power system control
KW - Electric power transmission networks
KW - Power control
KW - Smart power grids
KW - Centralized control
KW - Control applications
KW - Equipment control
KW - Field equipment
KW - Power
KW - Power equipment
KW - Power system automation
KW - Redundant connections
KW - Software-defined networkings
KW - Software defined networking
U2 - 10.1186/s42162-019-0086-y
DO - 10.1186/s42162-019-0086-y
M3 - Conference article
SN - 2520-8942
VL - 2
JO - Energy. Inform.
JF - Energy. Inform.
ER -