Thermographic Methods
Division 8.3
The Thermographic Methods division develops solutions for non-destructive testing and measurement technology problems in the field of thermography.
These solutions can be employed with great flexibility in industrial production processes, for quality assurance, for inspection and monitoring, and for repair. Investigations can be performed without any material destruction or contact at both very small and very large distances.
Metallic and non-metallic materials as well as composite material systems can be tested at various length scales ranging from micron cracks up to 100 m long rotor blades. Due to high testing speed and high grade of automation, the method is inline-capable.
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Fields of expertise
- Application and development of thermographic testing methods with optical heating sources (flash lamps, halogen lamps, LED-Arrays, Laserdiode-Arrays)
Making the invisible visible with thermography (Video, German Version only) - Characterization of damages and inhomogeneities in fiber reinforced composite systems (CFRP, GFRP) and in metals
In-situ characterization of low-velocity impact damage using thermography - Evaluation of joints (welded joints, bondings)
- In-situ monitoring of component quality during additive manufacturing
ATLAMP - Active thermography with laser excitation for additive manufacturing
FProMoAM - Forewarned is forearmed
Further information on in-situ monitoring - Investigation of safety-relevant facade detachments and of cracks in buildings and monuments
- Modelling of thermographic testing and heat transport using Finite Element Method (FEM)
- Use of artificial intelligence (neural networks) for better defect detection
- Application and development of thermographic testing methods with optical heating sources (flash lamps, halogen lamps, LED-Arrays, Laserdiode-Arrays)
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Main activities
- s aOn-site characterization of rotor blades of wind turbines
EvalTherm - Passive thermography for the detection of rotor blade damage on wind turbines - Research into the use of high-power laser sources for non-destructive defect detection
- Development of thermographic measuring systems for in-situ monitoring in additive manfacturing
- Development of methods for automated testing of turbine blades with robot-assisted laser thermography
First three joint research projects at the WvSC
MRO 2.0 - Maintenance, Repair & Overhaul - Data reconstruction for quantitative evaluation and characterization of defects, material properties as well as layer thicknesses and thicknesses of layered composites in fiber composites and metals
- Research on neural networks and mathematical optimization methods as a way to increase the reliability of defect detection
- s aOn-site characterization of rotor blades of wind turbines
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Range of services/technical equipment
- Research and Development
- Feasibility studies, validation of methods, consultancy
- Test orders, test instructions for special applications
- Standardisation
Several fully equipped thermography laboratories with:
- High-end thermography cameras at different wavelengths, up to 1280 x 1024 pixels, temperature resolution down to 20 mK
- Arrays of flash lamps up to 24 kJ
- Arrays of halogen lamps up to 5 kW
- Diode laser system up to 500 W optical output power at 940 nm with with integrateable beam expansion
- VCSEL laser array up to 2.4 kW optical output power at 980 nm, with 12 controllable single sources
- LED array up to 110 W optical output power at 850 nm
- induction generator up to 5 kW
- Radiation detectors, heat flow sensors, reference radiators, mechanical actuators, etc.
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Publications of the division
In the database PUBLICA you will find publications by BAM employees.
Publications of the division Thermographic Methods in PUBLICA
