Reconstructing effective ultrasound transducer models via distributed source inversion

Fuente: arXiv
Guardado en:
Detalles Bibliográficos
Autores principales: Bürchner, Tim, Schmid, Simon, Rank, Ernst, Kollmannsberger, Stefan, Fichtner, Andreas
Formato: Preprint
Publicado: 2026
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866914421290303488
author Bürchner, Tim
Schmid, Simon
Rank, Ernst
Kollmannsberger, Stefan
Fichtner, Andreas
author_facet Bürchner, Tim
Schmid, Simon
Rank, Ernst
Kollmannsberger, Stefan
Fichtner, Andreas
contents Accurate modeling of ultrasound wave propagation is essential for high-fidelity simulation and imaging in ultrasonic testing. A primary challenge lies in characterizing the excitation source, particularly for transducers with large apertures relative to the acoustic wavelengths. In such cases, non-uniform excitation and spatial interference significantly affect the resulting radiation patterns. This paper proposes a distributed source inversion strategy to reconstruct an effective spatio-temporal transducer model that reproduces experimentally measured wavefields. The reconstructed source model captures aperture-dependent phase and amplitude variations without the need for detailed knowledge of the transducer structure. The approach is validated using directivity measurements on an aluminum half-cylinder, where simulations incorporating the reconstructed source model show close agreement with experimental directivity patterns and waveform shapes. Finally, synthetic studies on reverse time migration and full-waveform inversion demonstrate that accurate transducer modeling is critical for the success of simulation-based imaging and inversion workflows and significantly improves reconstruction quality.
format Preprint
id arxiv_https___arxiv_org_abs_2603_24415
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Reconstructing effective ultrasound transducer models via distributed source inversion
Bürchner, Tim
Schmid, Simon
Rank, Ernst
Kollmannsberger, Stefan
Fichtner, Andreas
Medical Physics
Numerical Analysis
Accurate modeling of ultrasound wave propagation is essential for high-fidelity simulation and imaging in ultrasonic testing. A primary challenge lies in characterizing the excitation source, particularly for transducers with large apertures relative to the acoustic wavelengths. In such cases, non-uniform excitation and spatial interference significantly affect the resulting radiation patterns. This paper proposes a distributed source inversion strategy to reconstruct an effective spatio-temporal transducer model that reproduces experimentally measured wavefields. The reconstructed source model captures aperture-dependent phase and amplitude variations without the need for detailed knowledge of the transducer structure. The approach is validated using directivity measurements on an aluminum half-cylinder, where simulations incorporating the reconstructed source model show close agreement with experimental directivity patterns and waveform shapes. Finally, synthetic studies on reverse time migration and full-waveform inversion demonstrate that accurate transducer modeling is critical for the success of simulation-based imaging and inversion workflows and significantly improves reconstruction quality.
title Reconstructing effective ultrasound transducer models via distributed source inversion
topic Medical Physics
Numerical Analysis
url https://arxiv.org/abs/2603.24415