Damage Assessment of Reinforced Concrete Elements Due to Corrosion Effect Using Dynamic Parameters: A Review
Abstract
:1. Introduction
2. Damage Detection Methods Using Change of Dynamic Parameters
2.1. Changing of Natural Frequencies
2.2. Modal Damping Change
2.3. Change of Mode Shapes—MAC, COMAC
2.4. Mode Shape Curvature Method
2.5. Changing the Modal Flexibility
2.6. Discussion
3. Determination of Corrosion on Reinforced Concrete Elements Using Vibration-Based Methods—A Review
3.1. Research Review and Result Analysis
3.2. Synthesis of Results
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Damage Determination Method | Advantages | Disadvantages |
---|---|---|
Changing of natural frequencies | -the ability to easily measure the natural frequency with high accuracy -sensitivity on structural stiffness changes -expected variations of natural frequency can be successfully monitored through the structural health monitoring system -applicable for detection damage existence (Figure 2, level 1) | -impossibility to determine the damage location (global parameter) -sensitivity to environmental effects (temperature change) -difficult to determine the position of the load in symmetrical damages |
Modal damping change | -the possibility of detecting a nonlinear effect from smeared cracks on the structure -an alternative method in case the natural frequencies and mode shapes are not sufficiently sensitive and reliable -applicable for detection of the damage existence (Figure 2, level 1) | -sensitivity to temperature, load history, etc. -reliability only for simple structures -very complex methods for use in practical application |
Changing mode shapes | -greater sensitivity in determining the location of damage than natural frequencies -application is possible at level 2 | -requires a large number of sensors -sensitivity to environmental effects during measurement -depends on the completeness of the measured degrees of freedom -weakly sensitive method to small change in stiffness |
Changing the curvature of mode shapes | -accuracy in determining the location of damage -only experimental data are sufficient -proven reliability on real construction (bridge) | -less sensitive to multiple damages -the need for a large number of sensors -efficiency depends on the number of considered modes shapes |
Changing modal flexibility | -direct determination of the flexibility matrix from experimental research -sufficient reliability with the use of only the first few modal forms in the calculation -much more sensitive than mode shapes and natural frequencies | -unreliability in determining the locations of multiple damages -requires a large number of sensors for more accurate determination of modal shapes |
Category | Determination of Corrosion in Reinforced Concrete Elements Analysis of Dynamic Parameters | Literature Review |
---|---|---|
By applying basic dynamic parameters | Changing the natural frequency | [10,50,51,52,53,54,55,56,57,58,59,60] |
Change in damping coefficient | [51,52,53,55,56] | |
Changing modal shapes | [52] | |
By applying deviation of basic dynamic parameters | Changing the curvature of modal shapes | - |
Changing modal flexibility | - |
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Duvnjak, I.; Klepo, I.; Serdar, M.; Damjanović, D. Damage Assessment of Reinforced Concrete Elements Due to Corrosion Effect Using Dynamic Parameters: A Review. Buildings 2021, 11, 425. https://doi.org/10.3390/buildings11100425
Duvnjak I, Klepo I, Serdar M, Damjanović D. Damage Assessment of Reinforced Concrete Elements Due to Corrosion Effect Using Dynamic Parameters: A Review. Buildings. 2021; 11(10):425. https://doi.org/10.3390/buildings11100425
Chicago/Turabian StyleDuvnjak, Ivan, Ivan Klepo, Marijana Serdar, and Domagoj Damjanović. 2021. "Damage Assessment of Reinforced Concrete Elements Due to Corrosion Effect Using Dynamic Parameters: A Review" Buildings 11, no. 10: 425. https://doi.org/10.3390/buildings11100425
APA StyleDuvnjak, I., Klepo, I., Serdar, M., & Damjanović, D. (2021). Damage Assessment of Reinforced Concrete Elements Due to Corrosion Effect Using Dynamic Parameters: A Review. Buildings, 11(10), 425. https://doi.org/10.3390/buildings11100425