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CFRP Fatigue Damage Detection by Thermal Methods
Marta De Giorgi1, Riccardo Nobile1, Fania Palano2
1Department of Engineering for Innovation, University of Salento, 73100 Lecce, Italy.
This study investigated fatigue damage in carbon fiber reinforced polymer (CFRP) composites using thermal imaging. A strong correlation was found between temperature changes in stressed areas and fatigue damage, offering insights into material behavior.
Area of Science:
- Materials Science
- Mechanical Engineering
- Composite Materials
Background:
- Understanding fatigue damage in Carbon Fiber Reinforced Polymers (CFRP) is crucial for structural integrity.
- Traditional methods for assessing fatigue behavior can be time-consuming and may not capture localized damage evolution.
- Developing efficient methods to monitor fatigue in composites is essential for predictive maintenance and safety.
Purpose of the Study:
- To evaluate fatigue damage in CFRP uniaxial composite specimens as a function of the number of loading cycles.
- To establish correlations between global damage indicators (stiffness decay) and local thermal parameters.
- To identify thermal parameters that can predict fatigue life and damage progression.
Main Methods:
- Utilized thermal imaging techniques to monitor temperature changes during fatigue testing of CFRP specimens.
- Quantified fatigue damage using stiffness decay as a global indicator.
- Analyzed local temperature variations and heating rates in stressed areas.
- Correlated thermal data with the number of fatigue cycles and overall fatigue life.
Main Results:
- A direct correlation was identified between a damage index (at 90% fatigue life) and the temperature variation in the most stressed region.
- The heating rate during the initial cycles was found to be proportional to the stress amplitude.
- Thermal parameters provide valuable insights into the early stages of fatigue damage accumulation.
- Temperature evolution maps effectively indicate localized damage progression.
Conclusions:
- Thermal methods offer a viable approach for real-time monitoring and evaluation of fatigue damage in CFRP composites.
- Temperature variation in stressed areas serves as a reliable indicator of accumulated fatigue damage.
- The heating rate in the early fatigue cycles can predict the material's susceptibility to damage.
- This research contributes to improved non-destructive evaluation techniques for composite materials under cyclic loading.
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