Understanding the Impact of Decision Making on Robustness During Complex System Design: More Resilient Power Systems

Author:

Piacenza Joseph R.1,Faller Kenneth John2,Bozorgirad Mir Abbas3,Cotilla-Sanchez Eduardo4,Hoyle Christopher5,Tumer Irem Y.6

Affiliation:

1. Department of Mechanical Engineering, University of West Florida, 11000 University Parkway Boulevard 4, Rm. 136, Pensacola, FL 32514f

2. Department of Computer Engineering, California State University, Fullerton 800 North State College Boulevard. E-408, Fullerton, CA 92831

3. Optym, 7600 NW 5 Place, Gainesville, FL 32607

4. Oregon State University, 3023 Kelley Engineering Center, Corvallis, OR 97331

5. Department of Mechanical Engineering, Oregon State Univerity, Rogers Hall 418, Corvallis, OR 97331

6. Department of Mechanical Engineering, Oregon State University, Covell Hall 116, Corvallis, OR 97331

Abstract

Abstract Robust design strategies continue to be relevant during concept-stage complex system design to minimize the impact of uncertainty in system performance due to uncontrollable external failure events. Historical system failures such as the 2003 North American blackout and the 2011 Arizona-Southern California Outages show that decision making, during a cascading failure, can significantly contribute to a failure's magnitude. In this paper, a scalable, model-based design approach is presented to optimize the quantity and location of decision-making agents in a complex system, to minimize performance loss variability after a cascading failure, regardless of where the fault originated in the system. The result is a computational model that enables designers to explore concept-stage design tradeoffs based on individual risk attitudes (RA) for system performance and performance variability, after a failure. The IEEE RTS-96 power system test case is used to evaluate this method, and the results reveal key topological locations vulnerable to cascading failures, that should not be associated with critical operations. This work illustrates the importance of considering decision making when evaluating system level tradeoffs, supporting robust design.

Publisher

ASME International

Subject

Mechanical Engineering,Safety Research,Safety, Risk, Reliability and Quality

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