4.6 Article

Shear-lag modelling of surface-bonded magnetostrictive transducers for shear horizontal wave generation in a non-ferromagnetic plate

Journal

SMART MATERIALS AND STRUCTURES
Volume 30, Issue 3, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-665X/abe183

Keywords

structural health monitoring; fundamental shear horizontal wave; magnetostriction; 3D laser; frequency tuning curve

Funding

  1. Research Grants Council of Hong Kong Special Administrative Region [PolyU 152070/16E]
  2. National Natural Science Foundations of China through SHENG project (Polish-Chinese Funding Initiative) [51961135302]
  3. Research Fund of State Key Laboratory of Mechanics and Control of Mechanical Structures (Nanjing University of Aeronautics and astronautics) [MCMS-E-0520K01]
  4. Innovation and Technology Commission of the HKSAR Government

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The study investigates the generation of fundamental shear horizontal waves using magnetostrictive transducers (MsTs) and their design through establishing a theoretical model based on the shear-lag model and the normal mode expansion method. The theoretical model is validated through finite element simulations and experimental results, showing good agreement between predicted and actual outcomes, while also exploring the influences of coil configuration and bonding conditions. This research provides guidelines for system design and optimization for generating fundamental shear horizontal waves in guided-wave-based structural health monitoring applications.
The fundamental shear horizontal (SH) wave in thin-walled structures shows appealing features for structural health monitoring (SHM) applications. Its efficient generation and reception however remain a critical and challenging issue. Magnetostrictive transducers (MsTs) show proven ability in exciting strong SH waves due to the high piezomagnetic coefficient of the ferromagnetic foil. In this study, to investigate the fundamental SH wave generation using MsTs and their design, a theoretical model is established based on the shear-lag model and the normal mode expansion method. The coupling of an MsT with a host plate is achieved by a bonding layer, whose mechanical property is modelled through the continuous shear stress across the thickness. The theoretical model is validated using finite element simulations in terms of generation mechanism and some typical features associated with the fundamental SH wave component. Meanwhile, wave field is visualized using a 3D Laser scanning vibrometer system. Experimental results within a wide frequency range show a good agreement with the theoretically predicted results. Influences of the coil configuration and bonding conditions are further investigated using the proposed model. The study offers guidelines to system design and optimization for fundamental SH wave generation in views of guided-wave-based SHM applications.

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