Ferri García, M.; Bravo, JM.; Redondo, J.; Sánchez Pérez, JV. (2019). Enhanced numerical method for the design of 3D-printed holographic acoustic lenses for aberration correction of single-element transcranial focused ultrasound. Ultrasound in Medicine & Biology. 45(3):867-884. https://doi.org/10.1016/j.ultrasmedbio.2018.10.022
Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/133002
Title:
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Enhanced numerical method for the design of 3D-printed holographic acoustic lenses for aberration correction of single-element transcranial focused ultrasound
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Author:
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Ferri García, Marcelino
Bravo, Jose Maria
Redondo, Javier
Sánchez Pérez, Juan Vicente
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UPV Unit:
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Universitat Politècnica de València. Departamento de Física Aplicada - Departament de Física Aplicada
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Issued date:
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Abstract:
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[EN] The correction of transcranial focused ultrasound aberrations is a relevant issue for enhancing various non-invasive medical treatments. The emission through multi-element phased arrays has been the most widely accepted ...[+]
[EN] The correction of transcranial focused ultrasound aberrations is a relevant issue for enhancing various non-invasive medical treatments. The emission through multi-element phased arrays has been the most widely accepted method to improve focusing in recent years; however, the number and size of transducers represent a bottleneck that limits the focusing accuracy of the technique. To overcome this limitation, a new disruptive technology, based on 3-D-printed acoustic lenses, has recently been proposed. As the submillimeter precision of the latest generation of 3-D printers has been proven to overcome the spatial limitations of phased arrays, a new challenge is to improve the accuracy of the numerical simulations required to design this type of ultrasound lens. In the study described here, we evaluated two improvements in the numerical model applied in previous works for the design of 3-D-printed lenses: (i) allowing the propagation of shear waves in the skull by means of its simulation as an isotropic solid and (ii) introduction of absorption into the set of equations that describes the dynamics of the wave in both fluid and solid media. The results obtained in the numerical simulations are evidence that the inclusion of both s-waves and absorption significantly improves focusing.
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Subjects:
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3-D-printed lenses
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Focused ultrasound
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Transcranial ultrasound
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Single-element transducer
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Trans-cranial therapy
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Copyrigths:
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Reserva de todos los derechos
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Source:
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Ultrasound in Medicine & Biology. (issn:
0301-5629
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DOI:
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10.1016/j.ultrasmedbio.2018.10.022
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Publisher:
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Elsevier
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Publisher version:
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https://doi.org/10.1016/j.ultrasmedbio.2018.10.022
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Project ID:
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info:eu-repo/grantAgreement/MINECO//TEC2015-68076-R/ES/TECNICAS DE OPTIMIZACION Y PERSONALIZACION DE SONIDO INMERSIVO PARA EL GRAN PUBLICO/
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Thanks:
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This work was partially supported by the Spanish Ministerio de Economia y Empresa under Project TEC2015-68076-R. The authors thank Jose Sepulveda, director of Asociacion I2 CV, for his important input and scientific support.[+]
This work was partially supported by the Spanish Ministerio de Economia y Empresa under Project TEC2015-68076-R. The authors thank Jose Sepulveda, director of Asociacion I2 CV, for his important input and scientific support.
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Type:
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Artículo
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