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Energy System Diagnosis by a Fuzzy Expert System with Genetically Evolved Rules

Year 2008, Volume: 11 Issue: 3, 115 - 121, 01.09.2008
https://izlik.org/JA87AP58CC

Abstract

The problem of malfunction diagnosis in energy systems can be approached using an expert system which compares the experimental data measured by the plant acquisition system and the calculated data evaluated by a plant simulator under the same operating conditions. In this paper the rules that form the "knowledge base" of the expert system are not assigned heuristically by trying to code the expertise of plant personnel, as it is usually done, but they are artificially and randomly generated by the recombination and selection operators of an evolutionary algorithm. A two-objective optimization problem is set up, in order to search for the optimal sets of rules having the minimum complexity but simultaneously maximizing the number of correct fault identifications for a given set of malfunctioning operating conditions. A global and a local approach are applied to a real test case, a two-shaft gas turbine used as the gas section of a combined-cycle cogeneration plant, in order to evaluate the potentialities and the limits of this methodology.

Year 2008, Volume: 11 Issue: 3, 115 - 121, 01.09.2008
https://izlik.org/JA87AP58CC

Abstract

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Details

Primary Language English
Authors

Andrea Toffolo

Andrea Lazzaretto

Publication Date September 1, 2008
IZ https://izlik.org/JA87AP58CC
Published in Issue Year 2008 Volume: 11 Issue: 3

Cite

APA Toffolo, A., & Lazzaretto, A. (2008). Energy System Diagnosis by a Fuzzy Expert System with Genetically Evolved Rules. International Journal of Thermodynamics, 11(3), 115-121. https://izlik.org/JA87AP58CC
AMA 1.Toffolo A, Lazzaretto A. Energy System Diagnosis by a Fuzzy Expert System with Genetically Evolved Rules. International Journal of Thermodynamics. 2008;11(3):115-121. https://izlik.org/JA87AP58CC
Chicago Toffolo, Andrea, and Andrea Lazzaretto. 2008. “Energy System Diagnosis by a Fuzzy Expert System With Genetically Evolved Rules”. International Journal of Thermodynamics 11 (3): 115-21. https://izlik.org/JA87AP58CC.
EndNote Toffolo A, Lazzaretto A (September 1, 2008) Energy System Diagnosis by a Fuzzy Expert System with Genetically Evolved Rules. International Journal of Thermodynamics 11 3 115–121.
IEEE [1]A. Toffolo and A. Lazzaretto, “Energy System Diagnosis by a Fuzzy Expert System with Genetically Evolved Rules”, International Journal of Thermodynamics, vol. 11, no. 3, pp. 115–121, Sept. 2008, [Online]. Available: https://izlik.org/JA87AP58CC
ISNAD Toffolo, Andrea - Lazzaretto, Andrea. “Energy System Diagnosis by a Fuzzy Expert System With Genetically Evolved Rules”. International Journal of Thermodynamics 11/3 (September 1, 2008): 115-121. https://izlik.org/JA87AP58CC.
JAMA 1.Toffolo A, Lazzaretto A. Energy System Diagnosis by a Fuzzy Expert System with Genetically Evolved Rules. International Journal of Thermodynamics. 2008;11:115–121.
MLA Toffolo, Andrea, and Andrea Lazzaretto. “Energy System Diagnosis by a Fuzzy Expert System With Genetically Evolved Rules”. International Journal of Thermodynamics, vol. 11, no. 3, Sept. 2008, pp. 115-21, https://izlik.org/JA87AP58CC.
Vancouver 1.Toffolo A, Lazzaretto A. Energy System Diagnosis by a Fuzzy Expert System with Genetically Evolved Rules. International Journal of Thermodynamics [Internet]. 2008 Sept. 1;11(3):115-21. Available from: https://izlik.org/JA87AP58CC