Utilize este identificador para referenciar este registo: https://hdl.handle.net/1822/35577

Registo completo
Campo DCValorIdioma
dc.contributor.advisorPontes, A. J.-
dc.contributor.advisorSantis, Felice de-
dc.contributor.advisorPantani, Roberto-
dc.contributor.authorSora, Ricardo Jorge Paredespor
dc.date.accessioned2015-06-15T10:53:04Z-
dc.date.available2015-06-15T10:53:04Z-
dc.date.issued2014-
dc.date.submitted2014-
dc.identifier.urihttps://hdl.handle.net/1822/35577-
dc.descriptionDissertação de mestrado integrado em Polymer Engineeringpor
dc.description.abstractDuring filling stage, the constant mold temperature control strategy by circling coolant through cooling channels used in conventional injection molding causes an abrupt polymer solidification close to the mold surface and consequently resulting in a frozen layer. As the viscosity increases, the mobility of the polymer to fill the cavity is largely decreased influencing the frozen orientation. This phenomenon affects greatly the dimensional stability of the part and its optical properties, especially micro-injected parts in which high aspect ratios are precluded because of premature solidification. Recently, several studies have been proposed in literature in an effort to obtain a fast and uniform heating and cooling through the mold surface during filling stage. Inspired in those studies, a new system for rapid surface heating was designed, built and applied to a cavity for microinjection molding. To prove his feasibility as well as attempting to improve results, preliminary tests were conducted comparing theoretical and practical studies. Furthermore, the system consists in a well-balanced electrical resistive thin component and an insulation layer and can increase the mold surface temperature of several tenths of celsius degrees in less than one second. Injection molding tests were then carried out comparing this and a conventional system using both amorphous and semi-crystalline materials as well as different surface temperature for two cavities with a thickness of 250 μm. Moreover, in order to check the effect of those surface heating test, specimens were characterized according to their optical (polarized light and bright-field microscopy), mechanical (tensile tests) and thermal properties (differential scanning calorimetry).por
dc.language.isoengpor
dc.rightsopenAccesspor
dc.subjectHeat transferpor
dc.subjectMicro-injection moldingpor
dc.subjectMold surface temperaturepor
dc.subjectMorphologypor
dc.subjectRapid heatingpor
dc.subjectRapid coolingpor
dc.subjectThermoplastic materialspor
dc.titleDevelopment of a rapid surface temperature heating system and its application to micro-injectionpor
dc.title.alternativeDesenvolvimento de um sistema de aquecimento rápido para temperaturas de superfície e sua aplicação em micro-injeçãopor
dc.typemasterThesis-
dc.subject.udc678.027.74-
dc.subject.udc620.168-
sdum.uoeiEscola de Engenhariapor
dc.subject.fosEngenharia e Tecnologia::Engenharia dos Materiais-
Aparece nas coleções:BUM - Dissertações de Mestrado
DEP - Dissertações de Mestrado

Ficheiros deste registo:
Ficheiro Descrição TamanhoFormato 
Tese_Ricardo Sora_2014.pdf3,35 MBAdobe PDFVer/Abrir

Partilhe no FacebookPartilhe no TwitterPartilhe no DeliciousPartilhe no LinkedInPartilhe no DiggAdicionar ao Google BookmarksPartilhe no MySpacePartilhe no Orkut
Exporte no formato BibTex mendeley Exporte no formato Endnote Adicione ao seu ORCID