Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector

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The demand for high-pressure, operational cryogenic fluid storage systems in specialized laboratories has driven the design of an innovative solution due to the scarcity of specialized equipment in the local market. This article details the design and manufacturing of a portable, long-lasting cryoge...

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Detalles Bibliográficos
Autores: Raymundo, Carlos, Ronceros, Julio, Herrera, Carlos, Chavez, Heyul, Zapata, Gianpierre, Cruz, Cesar
Formato: artículo
Fecha de Publicación:2024
Institución:Universidad Peruana de Ciencias Aplicadas
Repositorio:UPC-Institucional
Lenguaje:inglés
OAI Identifier:oai:repositorioacademico.upc.edu.pe:10757/676032
Enlace del recurso:http://hdl.handle.net/10757/676032
Nivel de acceso:acceso embargado
Materia:Cryogenic storage
High pressure
Hydrostatic tank
Laboratory
Pascal
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dc.title.es_PE.fl_str_mv Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector
title Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector
spellingShingle Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector
Raymundo, Carlos
Cryogenic storage
High pressure
Hydrostatic tank
Laboratory
Pascal
title_short Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector
title_full Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector
title_fullStr Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector
title_full_unstemmed Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector
title_sort Structural Model of a Hydrostatic Cryogenic Liquid Storage and Pressurization Tank in the Food Sector
author Raymundo, Carlos
author_facet Raymundo, Carlos
Ronceros, Julio
Herrera, Carlos
Chavez, Heyul
Zapata, Gianpierre
Cruz, Cesar
author_role author
author2 Ronceros, Julio
Herrera, Carlos
Chavez, Heyul
Zapata, Gianpierre
Cruz, Cesar
author2_role author
author
author
author
author
dc.contributor.author.fl_str_mv Raymundo, Carlos
Ronceros, Julio
Herrera, Carlos
Chavez, Heyul
Zapata, Gianpierre
Cruz, Cesar
dc.subject.es_PE.fl_str_mv Cryogenic storage
High pressure
Hydrostatic tank
Laboratory
Pascal
topic Cryogenic storage
High pressure
Hydrostatic tank
Laboratory
Pascal
description The demand for high-pressure, operational cryogenic fluid storage systems in specialized laboratories has driven the design of an innovative solution due to the scarcity of specialized equipment in the local market. This article details the design and manufacturing of a portable, long-lasting cryogenic fluid storage tank that meets safety and efficiency requirements, while also facilitating individual cryogenic tests. By applying Pascal’s principle, an effective increase in the pressure of the cryogenic fluid was achieved, which is essential for supplying the system at pressure. The tank incorporates specific inputs and outputs, including an additional input for high-pressure air injection, a safety valve, and a pressure measurement port, highlighting its functionality and autonomy in individual operations. The integration of these features has been validated through simulations and empirical tests, demonstrating significant improvements in temperature retention and structural stability. The results obtained not only demonstrate the feasibility of the design for use in laboratories but also suggest an adaptable model for other applications where access to technology is limited. Having a calibrated pressure gauge with a maximum measurement error of 0.015 psi, which is lower than the allowed 0.025 psi, ensures the quality of measurements during its use. This contribution opens new perspectives for optimizing cryogenic tests and can serve as a reference for future research and technological developments in the field.
publishDate 2024
dc.date.accessioned.none.fl_str_mv 2024-10-06T11:36:34Z
dc.date.available.none.fl_str_mv 2024-10-06T11:36:34Z
dc.date.issued.fl_str_mv 2024-01-01
dc.type.es_PE.fl_str_mv info:eu-repo/semantics/article
format article
dc.identifier.issn.none.fl_str_mv 23673370
dc.identifier.doi.none.fl_str_mv 10.1007/978-981-97-3305-7_20
dc.identifier.uri.none.fl_str_mv http://hdl.handle.net/10757/676032
dc.identifier.eissn.none.fl_str_mv 23673389
dc.identifier.journal.es_PE.fl_str_mv Lecture Notes in Networks and Systems
dc.identifier.eid.none.fl_str_mv 2-s2.0-85201119379
dc.identifier.scopusid.none.fl_str_mv SCOPUS_ID:85201119379
identifier_str_mv 23673370
10.1007/978-981-97-3305-7_20
23673389
Lecture Notes in Networks and Systems
2-s2.0-85201119379
SCOPUS_ID:85201119379
url http://hdl.handle.net/10757/676032
dc.language.iso.es_PE.fl_str_mv eng
language eng
dc.rights.es_PE.fl_str_mv info:eu-repo/semantics/embargoedAccess
eu_rights_str_mv embargoedAccess
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dc.publisher.es_PE.fl_str_mv Springer Science and Business Media Deutschland GmbH
dc.source.none.fl_str_mv reponame:UPC-Institucional
instname:Universidad Peruana de Ciencias Aplicadas
instacron:UPC
instname_str Universidad Peruana de Ciencias Aplicadas
instacron_str UPC
institution UPC
reponame_str UPC-Institucional
collection UPC-Institucional
dc.source.journaltitle.none.fl_str_mv Lecture Notes in Networks and Systems
dc.source.volume.none.fl_str_mv 1004 LNNS
dc.source.beginpage.none.fl_str_mv 251
dc.source.endpage.none.fl_str_mv 262
bitstream.url.fl_str_mv https://repositorioacademico.upc.edu.pe/bitstream/10757/676032/1/license.txt
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By applying Pascal’s principle, an effective increase in the pressure of the cryogenic fluid was achieved, which is essential for supplying the system at pressure. The tank incorporates specific inputs and outputs, including an additional input for high-pressure air injection, a safety valve, and a pressure measurement port, highlighting its functionality and autonomy in individual operations. The integration of these features has been validated through simulations and empirical tests, demonstrating significant improvements in temperature retention and structural stability. The results obtained not only demonstrate the feasibility of the design for use in laboratories but also suggest an adaptable model for other applications where access to technology is limited. Having a calibrated pressure gauge with a maximum measurement error of 0.015 psi, which is lower than the allowed 0.025 psi, ensures the quality of measurements during its use. 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