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Identification of viscoelastic material properties by ultrasonic angular measurements in double through-transmission

Article dans une revue avec comité de lecture
Author
ccPOUDREL, Anne-Sophie
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]
GATTIN, Max
1004414 Laboratoire Modélisation et Simulation Multi-Echelle [MSME]
ROSI, Giuseppe
1004414 Laboratoire Modélisation et Simulation Multi-Echelle [MSME]
ccRÉBILLAT, Marc
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]
ccPEIXINHO, Jorge
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]
ccBOCHUD, Nicolas
1004414 Laboratoire Modélisation et Simulation Multi-Echelle [MSME]
ccMARGERIT, Pierre
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]

URI
http://hdl.handle.net/10985/25481
DOI
10.1121/10.0026518
Date
2024-07
Journal
The Journal of the Acoustical Society of America

Abstract

Recent advances in additive manufacturing (AM) of viscoelastic materials have paved the way toward the design of increasingly complex structures. In particular, emerging biomedical applications in acoustics involve structures with periodic micro-architectures, which require a precise knowledge of longitudinal and transverse bulk properties of the constituent materials. However, the identification of the transverse properties of highly soft and attenuating materials remains particularly challenging. Thereby, the present work provides a methodological framework to identify the frequency-dependent ultrasound characteristics (i.e., phase velocity and attenuation) of viscoelastic materials. The proposed approach relies on an inverse procedure based on angular measurements achieved in double through-transmission, referred as θ-scan. Toward this goal, a forward modeling of the double transmitted waves through a homogeneous solid is proposed for any incidence angle based on the global matrix formalism. The experimental validation is conducted by performing ultrasound measurements on two types of photopolymers that are commonly employed for AM purposes: a soft elastomer (ElasticoTM Black) and a glassy polymer (VeroUltraTM White). As a result, the inferred dispersive ultrasound characteristics are of interest for the computational calibration and validation of models involving complex multi-material structures in the MHz regime.

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