Active Vibration-Based Structural Health Monitoring of CFRP Beams and Plates Using an Elastoplastic Hysteresis Model of the Nonlinear Resonant Response

An active vibration-based methodology for structural health monitoring of polymer-matrix composites is presented, in which piezoelectric actuators excite resonant vibrations and the diagnostic information is carried by two nonlinear characteristics: the backbone curve and the amplitude-dependent logarithmic decrement. Both are described by a single elastoplastic model of the Iwan (microplasticity) type with a power-law distribution of yield thresholds. The two characteristics share a common power-law exponent, and the model predicts a parameter-free ratio between the modulus defect and the hysteretic intensity. The four parameters are identified by a joint Bayesian fit. The methodology is applied to two carbon-fiber-reinforced polymer objects: a cantilever beam with a symmetric stacking sequence (three modes, 87 to 1431 Hz) and a plate strip with an unsymmetric one (two modes near 34 and 203 Hz), each tested intact and after controlled local damage. The measured ratio reproduces the prediction within 4 to 12%; whereas, the fundamental plate mode reveals a non-frictional, matrix-dominated dissipation. Local damage increases the hysteretic intensity 1.4 to 2.3 times and the modulus defect up to 2.7 times, while the resonant frequency changes by less than 0.8% and the background decrement remains nearly unchanged, giving a compact damage signature with minimal baseline requirements.

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Journal
Journal of Manufacturing and Materials Processing
Published
2026-09-01
DOI
https://doi.org/10.3390/jmmp10090329
Primary Topic
Ultrasonics and Acoustic Wave Propagation
Type
article
Field-Weighted Citation Impact
0.00

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article

Active Vibration-Based Structural Health Monitoring of CFRP Beams and Plates Using an Elastoplastic Hysteresis Model of the Nonlinear Resonant Response

Valerii Kobzar, Andrejs Kovaļovs, Oleh Derkach, Artem Ratynskyi
Journal of Manufacturing and Materials Processing
Ultrasonics and Acoustic Wave Propagation
article

Active Vibration-Based Structural Health Monitoring of CFRP Beams and Plates Using an Elastoplastic Hysteresis Model of the Nonlinear Resonant Response

Valerii Kobzar, Andrejs Kovaļovs, Oleh Derkach, Artem Ratynskyi
article en

Abstract

An active vibration-based methodology for structural health monitoring of polymer-matrix composites is presented, in which piezoelectric actuators excite resonant vibrations and the diagnostic information is carried by two nonlinear characteristics: the backbone curve and the amplitude-dependent logarithmic decrement. Both are described by a single elastoplastic model of the Iwan (microplasticity) type with a power-law distribution of yield thresholds. The two characteristics share a common power-law exponent, and the model predicts a parameter-free ratio between the modulus defect and the hysteretic intensity. The four parameters are identified by a joint Bayesian fit. The methodology is applied to two carbon-fiber-reinforced polymer objects: a cantilever beam with a symmetric stacking sequence (three modes, 87 to 1431 Hz) and a plate strip with an unsymmetric one (two modes near 34 and 203 Hz), each tested intact and after controlled local damage. The measured ratio reproduces the prediction within 4 to 12%; whereas, the fundamental plate mode reveals a non-frictional, matrix-dominated dissipation. Local damage increases the hysteretic intensity 1.4 to 2.3 times and the modulus defect up to 2.7 times, while the resonant frequency changes by less than 0.8% and the background decrement remains nearly unchanged, giving a compact damage signature with minimal baseline requirements.

Journal of Manufacturing and Materials ProcessingVol. 10(9)
Riga Technical University (LV), National Academy of Medical Sciences of Ukraine (UA)
Izglītības un zinātnes ministrija
Openalex Percentile: Top 19%
Ultrasonics and Acoustic Wave Propagation
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Active Vibration-Based Structural Health Monitoring of CFRP Beams and Plates Using an Elastoplastic Hysteresis Model of the Nonlinear Resonant Response — Valerii Kobzar, Andrejs Kovaļovs, et al. · Journal of Manufacturing and Materials Processing (2026) | TGRS Research Map | TGRS