TY - GEN
T1 - Scalable, physical effects measurable microgrid for cyber resilience analysis (SPEMMCRA)
AU - Ulrich, Jacob
AU - McJunkin, Timothy
AU - Rieger, Craig
AU - Runyon, Michael
N1 - Publisher Copyright:
© 2020 IEEE.
PY - 2020/10/19
Y1 - 2020/10/19
N2 - The ability to advance the state of the art in automated cybersecurity protections for industrial control systems (ICS) has as a prerequisite of understanding the trade-off space. That is, to enable a cyber feedback loop in a control system environment you must first consider both the security mitigation available, the benefits and the impacts to the control system functionality when the mitigation is used. More damaging impacts could be precipitated that the mitigation was intended to rectify. This paper details networked ICS that controls a simulation of the frequency response represented with the swing equation. The microgrid loads and base generation can be balanced through the control of an emulated battery and power inverter. The simulated plant, which is implemented in Raspberry Pi computers, provides an inexpensive platform to realize the physical effects of cyber attacks to show the trade-offs of available mitigating actions. This network design can include a commercial ICS controller and simple plant or emulated plant to introduce real world implementation of feedback controls, and provides a scalable, physical effects measurable microgrid for cyber resilience analysis (SPEMMCRA).
AB - The ability to advance the state of the art in automated cybersecurity protections for industrial control systems (ICS) has as a prerequisite of understanding the trade-off space. That is, to enable a cyber feedback loop in a control system environment you must first consider both the security mitigation available, the benefits and the impacts to the control system functionality when the mitigation is used. More damaging impacts could be precipitated that the mitigation was intended to rectify. This paper details networked ICS that controls a simulation of the frequency response represented with the swing equation. The microgrid loads and base generation can be balanced through the control of an emulated battery and power inverter. The simulated plant, which is implemented in Raspberry Pi computers, provides an inexpensive platform to realize the physical effects of cyber attacks to show the trade-offs of available mitigating actions. This network design can include a commercial ICS controller and simple plant or emulated plant to introduce real world implementation of feedback controls, and provides a scalable, physical effects measurable microgrid for cyber resilience analysis (SPEMMCRA).
KW - automated security
KW - cyber-physical system
KW - industrial control system
KW - scalable Microgrid
UR - https://www.scopus.com/pages/publications/85096938536
U2 - 10.1109/RWS50334.2020.9241267
DO - 10.1109/RWS50334.2020.9241267
M3 - Conference contribution
AN - SCOPUS:85096938536
T3 - 2020 Resilience Week, RWS 2020
SP - 194
EP - 201
BT - 2020 Resilience Week, RWS 2020
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2020 Resilience Week, RWS 2020
Y2 - 19 October 2020 through 23 October 2020
ER -