Pre- and post-processing of PET-G 3D prints of honeycomb cellular structure for high energy absorption and surface engineering

dc.audience.educationlevelEstudiantes/Studentses_MX
dc.contributor.advisorMedina Medina, Dora Iliana
dc.contributor.authorBasurto Vázquez, Olimpia
dc.contributor.catalogerRRes_MX
dc.contributor.committeememberValencia Lazcano, Anai Alicia
dc.contributor.committeememberStasiak, Joanna
dc.contributor.departmentSchool of Engineering and Scienceses_MX
dc.contributor.institutionCampus Estado de Méxicoes_MX
dc.contributor.mentorSánchez Rodríguez, Elvia Patricia
dc.creatorMEDINA MEDINA, DORA ILIANA; 40536es_MX
dc.creatorVALENCIA LAZCANO, ANAI ALICIA; 230234es_MX
dc.creatorSANCHEZ RODRIGUEZ, ELVIA PATRICIA; 100483es_MX
dc.date.accessioned2021-08-18T15:01:19Z
dc.date.available2021-08-18T15:01:19Z
dc.date.created2020-06
dc.date.issued2020-06
dc.description.abstractUpon an impact, the resulting energy is manifested through unwanted damage to objects or persons. Therefore, it is essential to improve protective materials such that the system reduces injuries to the involved moving parts by the selection of material properties, design, and manufacturing processes. New materials with enhanced energy absorption capabilities are made of cellular structures. The hexagonal honeycomb structure is one of the most well-known for its space-filling capacity, structural stability, and high energy absorption potential. Additive Manufacturing (AM) technologies have been effectively useful in a vast range of applications. The evolution of these technologies has been studied continuously, focusing on improving mechanical and structural characteristics of the 3D printed models, such as fracture toughness to resist impacts and crack propagation to create complex quality parts that not only satisfy design requirements but also functionality, mechanical properties, and cost. An accessible manufacturing technology, for creating complex structures, is Fused Deposition Modeling (FDM). Nevertheless, this method has adverse surface features related to its layer by layer deposition. In this study, the 3D honeycomb structures of polyethylene terephthalate glycol (PET-G) were fabricated by the FDM method. The process parameters considered are infill density and layer printing orientation. The effectiveness of the design is investigated by performing in-plane compression tests. The set of parameters that produces superior results for better energy absorption capabilities is determined by analyzing the welding between filament layers in the printed object by the FDM technology. The structures were subjected to a vaporized solvent bonding post-processing technique, and the investigation highlights the rationale of interlayer diffusion response and adhesion strength by applying a sol-gel hydrophobic coating. This study utilized roughness, hardness, and contact angle analyses to provide a better understanding of the solvent-polymer interactions to gain insight into the advantages and limitations of this technique.es_MX
dc.description.degreeMaster of Science in Nanotechnologyes_MX
dc.format.mediumTextoes_MX
dc.identificator7||33||3312||331299es_MX
dc.identifier.citationBasurto Vázquez O. (2020). Pre- and post-processing of PET-G 3D prints of honeycomb cellular structure for high energy absorption and surface engineering [Unpublished master's thesis]. Instituto Tecnológico y de Estudios Superiores de Monterrey, México. Recuperado de: https://hdl.handle.net/11285/637530es_MX
dc.identifier.cvu922100es_MX
dc.identifier.urihttps://hdl.handle.net/11285/637530
dc.language.isoenges_MX
dc.publisherInstituto Tecnológico y de Estudios Superiores de Monterreyes_MX
dc.relation.impreso2020-06
dc.relation.isFormatOfversión publicadaes_MX
dc.rightsopenAccesses_MX
dc.rights.urihttp://creativecommons.org/licenses/by-nc/4.0es_MX
dc.subject.classificationINGENIERÍA Y TECNOLOGÍA::CIENCIAS TECNOLÓGICAS::TECNOLOGÍA DE MATERIALES::OTRASes_MX
dc.subject.keywordHoneycomb cellular structurees_MX
dc.subject.keyword3D printinges_MX
dc.subject.keywordEnergy absorberes_MX
dc.subject.keywordFDMes_MX
dc.subject.keywordPost-processinges_MX
dc.subject.keywordCVSes_MX
dc.subject.lcshSciencees_MX
dc.titlePre- and post-processing of PET-G 3D prints of honeycomb cellular structure for high energy absorption and surface engineeringes_MX
dc.typeTesis de maestría

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