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Multipoint Energy-Balanced Laser-Ultrasonic Transducer Based on a Thin-Cladding Fiber
Shengnan Zhou1,2, Cheng Zhou1,2, Jiajun Tian1,2
1School of Electronic and Information Engineering, Harbin Institute of Technology, Shenzhen 518055, China.
Sensors (Basel, Switzerland)
|March 13, 2024
Summary
A novel single-mode-multimode-thin-cladding fiber transducer generates ultrasonic signals with 2-3x higher amplitudes. This laser-ultrasonic system shows promise for non-destructive testing applications.
Area of Science:
- Photonics and Optical Engineering
- Materials Science
- Acoustics
Background:
- Laser-ultrasonic (LU) techniques are crucial for non-destructive testing (NDT).
- Conventional LU transducers face limitations in signal amplitude and efficiency.
- Novel fiber structures are needed to enhance LU system performance.
Purpose of the Study:
- To propose and demonstrate a novel multipoint transducer system using single-mode-multimode-thin-cladding (SMTC) fiber.
- To investigate the factors influencing coupling efficiency in the SMTC structure.
- To evaluate the performance of the proposed system with different photoacoustic materials.
Main Methods:
- Fabrication of a novel SMTC fiber-based transducer.
- Simulation analysis of MMF length and TCF diameter effects on coupling efficiency.
- Experimental comparison of graphite-epoxy resin and CSNP-PDMS composite materials.
- Development of a three-point energy-balanced LU transducer system.
Main Results:
- The SMTC transducer achieved 2-3 fold higher signal amplitudes than conventional LU transducers.
- Coupling efficiency was precisely controlled by adjusting MMF length.
- Optimal CSNP thickness was determined experimentally.
- CSNP-PDMS composite showed higher photoacoustic conversion efficiency than graphite-epoxy resin.
Conclusions:
- The SMTC fiber structure offers a safe and efficient method for generating high-amplitude ultrasonic signals.
- The proposed multipoint LU transducer system demonstrates improved energy conversion efficiency.
- The system holds significant potential for advanced NDT applications, particularly with CSNP-based materials.

