Emergent behavior is a unique aspect of complex systems, where they exhibit behavior that is more complex than the sum of the behavior of their constituent parts. This behavior includes the propagation of faults between parts, and requires information on how the parts are connected. These parts can include software, electronic and mechanical components, hence requiring a capability to track emergent fault propagation paths as they cross the boundaries of technical disciplines. Prior work has introduced the functional failure identification and propagation (FFIP) simulation framework, which reveals the propagation of abnormal flow states and can thus be used to infer emergent system-wide behavior that may compromise the reliability of the system. An advantage of FFIP is that it is used to model early phase designs, before high cost commitments are made and before high fidelity models are available. This has also been a weakness in previous research on FFIP, since results depend on arbitrary choices for the values of model parameters and timing of critical events. Previously, FFIP has used a discrete set of flow state values and a simple behavioral logic; this has had the advantage of limiting the range of possible parameter values, but it has not been possible to model continuous process dynamics. In this paper, the FFIP framework has been extended to support continuous flow levels and linear modeling of component behavior based on first principles. Since this extension further expands the range of model parameter values, methods and tools for studying the impact of parameter value changes are introduced. The result is an evaluation of how the FFIP results are impacted by changes in the model parameters and the timing of critical events. The method is demonstrated on a boiling water reactor model (limited to the coolant recirculation and steam outlets) in order to focus the analysis of emergent fault behavior that could not have been identified with previously published versions of the FFIP framework.
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September 2012
Research-Article
Simulation of Interactions and Emergent Failure Behavior During Complex System Design
Seppo Sierla,
Seppo Sierla
e-mail: seppo.sierla@aalto.fi
Department of Automation and Systems Technology,
Aalto University,
P.O. Box 15500,
Aalto, 00076
Department of Automation and Systems Technology,
School of Electrical Engineering
,Aalto University,
P.O. Box 15500,
Aalto, 00076
Finland
Search for other works by this author on:
Irem Y. Tumer
Irem Y. Tumer
1
e-mail: irem.tumer@oregonstate.edu
Complex Engineered System Design Laboratory,
School of Mechanical, Industrial, and
Manufacturing Engineering,
204 Rogers Hall,
Corvallis, OR 97331
Complex Engineered System Design Laboratory,
School of Mechanical, Industrial, and
Manufacturing Engineering,
Oregon State University
,204 Rogers Hall,
Corvallis, OR 97331
1Corresponding author.
Search for other works by this author on:
Seppo Sierla
e-mail: seppo.sierla@aalto.fi
Department of Automation and Systems Technology,
Aalto University,
P.O. Box 15500,
Aalto, 00076
Department of Automation and Systems Technology,
School of Electrical Engineering
,Aalto University,
P.O. Box 15500,
Aalto, 00076
Finland
Irem Y. Tumer
e-mail: irem.tumer@oregonstate.edu
Complex Engineered System Design Laboratory,
School of Mechanical, Industrial, and
Manufacturing Engineering,
204 Rogers Hall,
Corvallis, OR 97331
Complex Engineered System Design Laboratory,
School of Mechanical, Industrial, and
Manufacturing Engineering,
Oregon State University
,204 Rogers Hall,
Corvallis, OR 97331
1Corresponding author.
Contributed by the Design Engineering Division of ASME for publication in the Journal of Computing and Information Science in Engineering. Manuscript received October 25, 2011; final manuscript received July 19, 2012; published online August 21, 2012. Assoc. Editor: Shuming Gao.
J. Comput. Inf. Sci. Eng. Sep 2012, 12(3): 031007 (10 pages)
Published Online: August 21, 2012
Article history
Received:
October 25, 2011
Revision Received:
July 19, 2012
Citation
Papakonstantinou, N., Sierla, S., Jensen, D. C., and Tumer, I. Y. (August 21, 2012). "Simulation of Interactions and Emergent Failure Behavior During Complex System Design." ASME. J. Comput. Inf. Sci. Eng. September 2012; 12(3): 031007. https://doi.org/10.1115/1.4007309
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