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    Predictive model of fatigue crack detection in thick bridge steel structures with piezoelectric wafer active sensors

    Gresil, M.; Yu, L.; Shen, Y.; Giurgiutiu, V.;

    Smart Structures and Systems. 2013;12(2):97-119.

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    Abstract

    This paper presents numerical and experimental results on the use of guided waves for structural health monitoring (SHM) of crack growth during a fatigue test in a thick steel plate used for civil engineering application. Numerical simulation, analytical modeling, and experimental tests are used to prove that piezoelectric wafer active sensor (PWAS) can perform active SHM using guided wave pitch-catch method and passive SHM using acoustic emission (AE). AE simulation was performed with the multi-physic FEM (MP-FEM) approach. The MP-FEM approach permits that the output variables to be expressed directly in electric terms while the two-ways electromechanical conversion is done internally in the MP-FEM formulation. The AE event was simulated as a pulse of defined duration and amplitude. The electrical signal measured at a PWAS receiver was simulated. Experimental tests were performed with PWAS transducers acting as passive receivers of AE signals. An AE source was simulated using 0.5-mm pencil lead breaks. The PWAS transducers were able to pick up AE signal with good strength. Subsequently, PWAS transducers and traditional AE transducer were applied to a 12.7-mm CT specimen subjected to accelerated fatigue testing. Active sensing in pitch catch mode on the CT specimen was applied between the PWAS transducers pairs. Damage indexes were calculated and correlated with actual crack growth. The paper finishes with conclusions and suggestions for further work.

    Bibliographic metadata

    Type of resource:
    Content type:
    Publication status:
    Accepted
    Publication type:
    Publication form:
    Published date:
    Accepted date:
    2012-10-27
    Submitted date:
    2012-03-20
    Language:
    eng
    ISSN:
    Publisher:
    Volume:
    12
    Issue:
    2
    Start page:
    97
    End page:
    119
    Pagination:
    97-119
    Digital Object Identifier:
    10.12989/sss.2013.12.2.097
    Funder(s) acknowledged in this article?:
    Yes
    Attached files embargo period:
    Immediate release
    Attached files release date:
    23rd February, 2014
    Access state:
    Active

    Institutional metadata

    University researcher(s):

    Record metadata

    Manchester eScholar ID:
    uk-ac-man-scw:219996
    Created by:
    Gresil, Matthieu
    Created:
    23rd February, 2014, 14:39:49
    Last modified by:
    Gresil, Matthieu
    Last modified:
    8th October, 2014, 13:29:45

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