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Porównanie metod wykrywania uszkodzeń w aspekcie możliwości ich automatyzacji

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Treść / Zawartość
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Warianty tytułu
EN
Comparison of damage detection methods in aspect of their automation ability
Języki publikacji
PL
Abstrakty
PL
W pracy pokazano przegląd metod nieniszczącego wykrywania uszkodzeń pod kątem możliwości ich zastosowania do układów monitoringu stanu obiektów inżynierii lądowej. Celem autora było wyłonienie metody, która pracowałaby w sposób automatyczny, tzn. bez konieczności udziału operatora - badacza w procesie zbierania i analizy danych oraz wnioskowania o wystąpieniu uszkodzenia. Sformułowano kryteria oceny metod i podano, poza krótkim opisem, jak kolejne metody spełniają zadane wymagania. Dla wybranych metod przeprowadzono weryfikację numeryczną.
EN
The paper contains the review of nondestructive damage detection methods in aspect of their application to structural health monitoring system of civil engineering objects. The goal of the author was to find the method, which would work fully automatically, that is without any interaction of operator - researcher in the process of gathering and analyzing data and reasoning about damage occurrence. The criteria of evaluation of the methods were formulated, and, apart from the short description, following methods were judged according to this requirements. For selected algorithms the numerical verification was performed.
Czasopismo
Rocznik
Tom
Strony
83--92
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
autor
  • Katedra Robotyki i Mechatroniki, Akademia Górniczo-Hutnicza w Krakowie, 30-059 Kraków, al. Mickiewicza 30, mendrok@agh.edu.pl
Bibliografia
  • [1] Farrar C. R., Doebling, S. W.: “An averview of modal-based damage identification methods”, Proceedings of DAMAS Conference, Sheffield, UK, June (1997).
  • [2] Mendrok K., Uhl T.: “Overview of modal model based damage detection methods”, Proceedings of 2004 ISMA, Leuven, Belgium, (2004).
  • [3] Zhang Q., Allemang, R. J., Brown, D. L.: “Modal Filter: Concept and Applications”, Proceedings of International Modal Analysis Conference, pp. 487-496, (1990).
  • [4] Gawronski W., Sawicki J.: “Structural damage detection using modal norms”, Journal of Sound and Vibration, 229 (1), 194–198, (2000).
  • [5] El-Ouafi Bahlous S., Abdelghani M., H. Smaoui, S. El-Borgi: “A Modal Filtering and Statistical Approach for Damage Detection and Diagnosis in Structures using Ambient Vibrations Measurements”, Journal of Vibration and Control, Vol. 13, No. 3, 281-308 (2007).
  • [6] Deraemaeker A., Preumont A.: “Vibration based damage detection using large array sensors and spatial filters”, Mechanical Systems and Signal Processing, Volume 20, Issue 7, 1615-1630, (2006).
  • [7] Lisowski W.: Selected problems of automation of procedures of experimental modal analysis (in Polish), AGH Publishers, Krakow, Poland, (2006).
  • [8] Ettouney, M., Daddazio, R., Hapij, A., Aly, A.: “Health Monitoring of Complex Structures”, Smart Structures and Materials 1999: Industrial and Commercial Applications of Smart Structures Technologies, Proceedings of SPIE, Vol. 3326, pp. 368- 379, (1999).
  • [9] Kawiecki, G.: “Modal Damping Measurements for Damage Detection”, European COST F3 Conference on System Identification and Structural Health Monitoring, Madrid, Spain, 651-658, (2000).
  • [10] Agneni A., Crema, L., Mastroddi F.: “Damage Detection from Truncated Frequency Response Functions”, European COST F3 Conference on System Identification and Structural Health Monitoring, Madrid, Spain, 137-146, (2000).
  • [11] Balis Crema, L., Mastroddi, F.: “A Direct Approach for Updating and Damage Detection by Using FRF Data”, Proceedings of ISMA23, Noise and Vibration Engineering, Leuven, Belgium, (1998).
  • [12] Żak, A., Krawczuk M., Ostachowicz W.: “Vibration of a Laminated Composite Plate with Closing Delamination”, Structural Damage Assessment Using Advanced Signal Processing Procedures Proceedings of DAMAS 99, Univ. College, Dublin, Ireland, (1999).
  • [13] Carrasco, C., Osegueda, R., Ferregut, C., Grygier, M.: “Localization and Quantification of Damage in a Space Truss Model Using Modal Strain Energy”, Smart Systems for Bridges, Structures, and Highways, Proceedings of SPIE, Vol. 3043, 181- 192, (1997).
  • [14] Sohn, H., Law, K. H.: “Extraction of Ritz Vectors from Vibration Test Data”, Structural Health Monitoring 2000, Stanford University, Palo Alto, CA, 840-850, (2000).
  • [15] Heyns, P. S.: “Structural Damage Assessment Using Response-Only Measurements”, Structural Damage Assessment Using Advanced Signal Processing Procedures, Proceedings of DAMAS ‘97, Univ. of Sheffield, UK, 213-223, (1997).
  • [16] Bodeux, J. B., Golinval, J. C.: “ARMAV Model Technique for System Identification and Damage Detection”, European COST F3 Conference on System Identification and Structural Health Monitoring, Madrid, Spain, 303-312, (2000).
  • [17] Naldi, G., Venini, P.: “Post-processing Singular Solutions by the Wavelet Transform”, Structural Damage Assessment Using Advanced Signal Processing Procedures Proceedings of DAMAS ‘97, Univ. of Sheffield, UK, 109-120, (1997).
  • [18] Ruotolo, R., Surace C.: “Damage Detection Using Singular Value Decomposition” Structural Damage Assessment Using Advanced Signal Processing Procedures Proceedings of DAMAS ‘97, Univ. of Sheffield, UK, 87-96, 1997.
  • [19] Williams, E. J., Messina, A.: “Applications of the Multiple Damage Location Assurance Criterion”, Proceedings of DAMAS 99, Dublin, Ireland, (1999).
  • [20] Johnson T. J., Adams D. E.: “Transmissibility as a Differential Indicator of Structural Damage”, Journal of Vibration and Acoustics, Volume 124, Issue 4, pp. 634-641 (2002).
  • [21] Mendrok K., Uhl T., “Application of modal filter for damage detection”, Proceedings of III ECOMAS Conference - Smart Material and Structures, Gdańsk, Polska, (2007).
  • [22] Uhl T., „Komputerowo wspomagana identyfikacja modeli konstrukcji mechanicznych”, WNT Warszawa, (1997).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BAR0-0032-0055
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