Acoustic design aspects of megasonic reactors for oils and fat separation

Pérez Alvarez, Nicolás - Disela, Roxana - Xu, Xin-Qing - Juliano, Pablo - Swiergon, Piotr - Knoerzer, Kai - Grompone, María Antonia

Resumen:

The performance of ultrasound reactors developed to enhance oil and fat droplet separation and fractionation rely on a number of factors. These factors include the selection of transducers, the reactor geometry and dimensions, and the physical properties of the product to be processed. Ultrasound standing wave separation reactors operating in the MHz frequency range are also referred to as megasonic reactors. The separation principle is based on acoustic radiation forces following Gorkov's theory. Depending on density and compressibility, fluid droplets are splitting between nodes and antinodes in a standing wave field. The interactions between primary and secondary acoustic radiation forces and acoustic streaming determine the reactor's performance. The efficiency of the megasonic reactor strongly depends on the attenuation of the sound waves by the fluid. The sound pressure levels obtained in a large scale (up to 1.2 m) trough attached with a 600 kHz transducer were measured in water or oil bearing materials using a novel hydrophone system. Significant attenuation was observed from the midpoint of the trough through to the end when sound transmission was investigated in water, while further attenuation was observed when using palm oil sludge. Following these results, a methodology to validate megasonically enhanced oil separation from avocado and palm oil at minimum sound penetration levels at laboratory scale was developed. The combination of sound penetration data in sludges or paste supported by benchtop results will provide the information to design large scale megasonic reactors.


Detalles Bibliográficos
2016
Ultrasound
Megasonics
Penetration
Reactor design
Sound pressure
Sistemas y Control
Inglés
Universidad de la República
COLIBRI
https://hdl.handle.net/20.500.12008/42723
Acceso abierto
Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
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author Pérez Alvarez, Nicolás
author2 Disela, Roxana
Xu, Xin-Qing
Juliano, Pablo
Swiergon, Piotr
Knoerzer, Kai
Grompone, María Antonia
author2_role author
author
author
author
author
author
author_facet Pérez Alvarez, Nicolás
Disela, Roxana
Xu, Xin-Qing
Juliano, Pablo
Swiergon, Piotr
Knoerzer, Kai
Grompone, María Antonia
author_role author
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dc.creator.none.fl_str_mv Pérez Alvarez, Nicolás
Disela, Roxana
Xu, Xin-Qing
Juliano, Pablo
Swiergon, Piotr
Knoerzer, Kai
Grompone, María Antonia
dc.date.accessioned.none.fl_str_mv 2024-02-26T19:52:47Z
dc.date.available.none.fl_str_mv 2024-02-26T19:52:47Z
dc.date.issued.es.fl_str_mv 2016
dc.date.submitted.es.fl_str_mv 20240223
dc.description.abstract.none.fl_txt_mv The performance of ultrasound reactors developed to enhance oil and fat droplet separation and fractionation rely on a number of factors. These factors include the selection of transducers, the reactor geometry and dimensions, and the physical properties of the product to be processed. Ultrasound standing wave separation reactors operating in the MHz frequency range are also referred to as megasonic reactors. The separation principle is based on acoustic radiation forces following Gorkov's theory. Depending on density and compressibility, fluid droplets are splitting between nodes and antinodes in a standing wave field. The interactions between primary and secondary acoustic radiation forces and acoustic streaming determine the reactor's performance. The efficiency of the megasonic reactor strongly depends on the attenuation of the sound waves by the fluid. The sound pressure levels obtained in a large scale (up to 1.2 m) trough attached with a 600 kHz transducer were measured in water or oil bearing materials using a novel hydrophone system. Significant attenuation was observed from the midpoint of the trough through to the end when sound transmission was investigated in water, while further attenuation was observed when using palm oil sludge. Following these results, a methodology to validate megasonically enhanced oil separation from avocado and palm oil at minimum sound penetration levels at laboratory scale was developed. The combination of sound penetration data in sludges or paste supported by benchtop results will provide the information to design large scale megasonic reactors.
dc.identifier.citation.es.fl_str_mv Juliano, P, Xu, X-Q, Disela, R, Pérez, N, Swiergon, P, Knoerzer, K, Grompone, M.A. "Acoustic design aspects of megasonic reactors for oils and fat separation" Proceedings of the 22nd International Congress on Acoustics, Buenos Aires, Argentina, 5-9 set. 2016.
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12008/42723
dc.language.iso.none.fl_str_mv en
eng
dc.relation.ispartof.es.fl_str_mv 22nd International Congress on Acoustics, Buenos Aires, Argentina, 5-9 set. 2016
dc.rights.license.none.fl_str_mv Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:COLIBRI
instname:Universidad de la República
instacron:Universidad de la República
dc.subject.es.fl_str_mv Ultrasound
Megasonics
Penetration
Reactor design
Sound pressure
dc.subject.other.es.fl_str_mv Sistemas y Control
dc.title.none.fl_str_mv Acoustic design aspects of megasonic reactors for oils and fat separation
dc.type.es.fl_str_mv Ponencia
dc.type.none.fl_str_mv info:eu-repo/semantics/conferenceObject
dc.type.version.none.fl_str_mv info:eu-repo/semantics/publishedVersion
description The performance of ultrasound reactors developed to enhance oil and fat droplet separation and fractionation rely on a number of factors. These factors include the selection of transducers, the reactor geometry and dimensions, and the physical properties of the product to be processed. Ultrasound standing wave separation reactors operating in the MHz frequency range are also referred to as megasonic reactors. The separation principle is based on acoustic radiation forces following Gorkov's theory. Depending on density and compressibility, fluid droplets are splitting between nodes and antinodes in a standing wave field. The interactions between primary and secondary acoustic radiation forces and acoustic streaming determine the reactor's performance. The efficiency of the megasonic reactor strongly depends on the attenuation of the sound waves by the fluid. The sound pressure levels obtained in a large scale (up to 1.2 m) trough attached with a 600 kHz transducer were measured in water or oil bearing materials using a novel hydrophone system. Significant attenuation was observed from the midpoint of the trough through to the end when sound transmission was investigated in water, while further attenuation was observed when using palm oil sludge. Following these results, a methodology to validate megasonically enhanced oil separation from avocado and palm oil at minimum sound penetration levels at laboratory scale was developed. The combination of sound penetration data in sludges or paste supported by benchtop results will provide the information to design large scale megasonic reactors.
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identifier_str_mv Juliano, P, Xu, X-Q, Disela, R, Pérez, N, Swiergon, P, Knoerzer, K, Grompone, M.A. "Acoustic design aspects of megasonic reactors for oils and fat separation" Proceedings of the 22nd International Congress on Acoustics, Buenos Aires, Argentina, 5-9 set. 2016.
instacron_str Universidad de la República
institution Universidad de la República
instname_str Universidad de la República
language eng
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network_acronym_str COLIBRI
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publishDate 2016
reponame_str COLIBRI
repository.mail.fl_str_mv mabel.seroubian@seciu.edu.uy
repository.name.fl_str_mv COLIBRI - Universidad de la República
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rights_invalid_str_mv Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
spelling 2024-02-26T19:52:47Z2024-02-26T19:52:47Z201620240223Juliano, P, Xu, X-Q, Disela, R, Pérez, N, Swiergon, P, Knoerzer, K, Grompone, M.A. "Acoustic design aspects of megasonic reactors for oils and fat separation" Proceedings of the 22nd International Congress on Acoustics, Buenos Aires, Argentina, 5-9 set. 2016.https://hdl.handle.net/20.500.12008/42723The performance of ultrasound reactors developed to enhance oil and fat droplet separation and fractionation rely on a number of factors. These factors include the selection of transducers, the reactor geometry and dimensions, and the physical properties of the product to be processed. Ultrasound standing wave separation reactors operating in the MHz frequency range are also referred to as megasonic reactors. The separation principle is based on acoustic radiation forces following Gorkov's theory. Depending on density and compressibility, fluid droplets are splitting between nodes and antinodes in a standing wave field. The interactions between primary and secondary acoustic radiation forces and acoustic streaming determine the reactor's performance. The efficiency of the megasonic reactor strongly depends on the attenuation of the sound waves by the fluid. The sound pressure levels obtained in a large scale (up to 1.2 m) trough attached with a 600 kHz transducer were measured in water or oil bearing materials using a novel hydrophone system. Significant attenuation was observed from the midpoint of the trough through to the end when sound transmission was investigated in water, while further attenuation was observed when using palm oil sludge. Following these results, a methodology to validate megasonically enhanced oil separation from avocado and palm oil at minimum sound penetration levels at laboratory scale was developed. The combination of sound penetration data in sludges or paste supported by benchtop results will provide the information to design large scale megasonic reactors.Made available in DSpace on 2024-02-26T19:52:47Z (GMT). No. of bitstreams: 5 JXDPSKG16.pdf: 425323 bytes, checksum: 72e279a835da84a18ae360f5e69596ec (MD5) license_text: 21936 bytes, checksum: 9833653f73f7853880c94a6fead477b1 (MD5) license_url: 49 bytes, checksum: 4afdbb8c545fd630ea7db775da747b2f (MD5) license_rdf: 23148 bytes, checksum: 9da0b6dfac957114c6a7714714b86306 (MD5) license.txt: 4244 bytes, checksum: 528b6a3c8c7d0c6e28129d576e989607 (MD5) Previous issue date: 2016eneng22nd International Congress on Acoustics, Buenos Aires, Argentina, 5-9 set. 2016Las obras depositadas en el Repositorio se rigen por la Ordenanza de los Derechos de la Propiedad Intelectual de la Universidad De La República. (Res. Nº 91 de C.D.C. de 8/III/1994 – D.O. 7/IV/1994) y por la Ordenanza del Repositorio Abierto de la Universidad de la República (Res. Nº 16 de C.D.C. de 07/10/2014)info:eu-repo/semantics/openAccessLicencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)UltrasoundMegasonicsPenetrationReactor designSound pressureSistemas y ControlAcoustic design aspects of megasonic reactors for oils and fat separationPonenciainfo:eu-repo/semantics/conferenceObjectinfo:eu-repo/semantics/publishedVersionreponame:COLIBRIinstname:Universidad de la Repúblicainstacron:Universidad de la RepúblicaPérez Alvarez, NicolásDisela, RoxanaXu, Xin-QingJuliano, PabloSwiergon, PiotrKnoerzer, KaiGrompone, María 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spellingShingle Acoustic design aspects of megasonic reactors for oils and fat separation
Pérez Alvarez, Nicolás
Ultrasound
Megasonics
Penetration
Reactor design
Sound pressure
Sistemas y Control
status_str publishedVersion
title Acoustic design aspects of megasonic reactors for oils and fat separation
title_full Acoustic design aspects of megasonic reactors for oils and fat separation
title_fullStr Acoustic design aspects of megasonic reactors for oils and fat separation
title_full_unstemmed Acoustic design aspects of megasonic reactors for oils and fat separation
title_short Acoustic design aspects of megasonic reactors for oils and fat separation
title_sort Acoustic design aspects of megasonic reactors for oils and fat separation
topic Ultrasound
Megasonics
Penetration
Reactor design
Sound pressure
Sistemas y Control
url https://hdl.handle.net/20.500.12008/42723