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Updated: Apr 23, 2026

Data Acquisition Protocol for Determining Embedded Sensitivity Functions
Published on: April 20, 2016
Non-classical nonlinear feature extraction from standard resonance vibration data for damage detection.
1Instituto de Ciencia y Tecnología del Hormigón (ICITECH), Universitat Politècnica de València, Camino de Vera s/n, Valencia, E-46022 Spain jeseifer@posgrado.upv.es, jmmonzo@cst.upv.es, jjpaya@cst.upv.es.
Dynamic non-classical nonlinear analyses offer a promising method for diagnosing material damage. This study quantifies nonlinear dynamic behavior from vibration tests, showing it’s more sensitive to internal damage than traditional linear methods.
Area of Science:
- Materials Science
- Structural Health Monitoring
- Nonlinear Dynamics
Background:
- Materials exhibiting mesoscale structure, like concrete, can display complex nonlinear dynamic behavior.
- Accurate damage diagnostics are crucial for material integrity and safety.
- Traditional linear vibration analysis may not fully capture damage-induced changes.
Purpose of the Study:
- To extract and quantify nonlinear non-classical dynamic material behavior from vibration test data.
- To assess the sensitivity of these nonlinear parameters to internal material damage.
- To compare the effectiveness of nonlinear parameters against standard linear vibration parameters for damage detection.
Main Methods:
- Utilized standard vibration test data from cement mortar bar samples.
- Applied dynamic non-classical nonlinear analyses to extract material behavior.
- Quantified extracted nonlinear non-classical parameters.
- Compared sensitivity of nonlinear parameters to internal damage with linear parameters.
Main Results:
- Successfully extracted and quantified nonlinear non-classical dynamic material behavior.
- Demonstrated that the extracted nonlinear parameters are sensitive to internal damage.
- Showed that nonlinear parameters are more sensitive to damage levels than standard linear vibration parameters.
- The applied procedure is robust and easy to implement.
Conclusions:
- Dynamic non-classical nonlinear analyses are effective for material damage diagnostics.
- Extracted nonlinear parameters provide a more sensitive measure of internal damage compared to linear methods.
- This approach offers a promising, practical tool for assessing material health in structures like concrete.
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