115 resultados para Epóxi
Resumo:
Este trabalho teve como objetivo determinar as propriedades de painéis fabricados com mistura de partículas de madeira de Eucalyptus grandis, polietileno de alta densidade, polietileno de baixa densidade e polipropileno. Empregaram-se duas formulações adesivas (uréia-formaldeído e uréia-formaldeído contendo 0,5% de epóxi). De modo geral, as propriedades dos painéis foram afetadas pela composição das partículas. Os painéis com melhores propriedades foram fabricados com 75% de partículas de madeira e 25% de partículas de polietileno de alta densidade. A adição de epóxi ao adesivo uréico aumentou os valores do módulo de ruptura, dureza Janka, e reduziu o inchamento, em espessura, de alguns painéis. As propriedades mecânicas da maioria dos painéis, exceto o módulo de elasticidade, ultrapassaram os valores mínimos estabelecidos na norma ANSI/A1-208/93.
Resumo:
A adequabilidade da variedade de morango Chandler ao processo de congelamento e a influência da utilização de tratamentos pré-congelamento foram avaliadas. Tanto na matéria-prima como no produto final foram realizadas medidas objetivas de textura, pH, acidez total titulável, teor de sólidos solúveis, teor de ácido ascórbico e perda de líquido por exsudação. Subjetivamente foram avaliados o sabor, a textura e a cor do produto final. O preparo dos frutos para congelamento compreendeu os procedimentos normais de limpeza, corte em metades e os tratamentos de pré-congelamento, que utilizaram: sacarose, cloreto de cálcio, pectina e aplicação de calor. Os produtos foram acondicionados em latas com capacidade para 450g (74,6 x 95,2mm), revestidas internamente com verniz epóxi fenólico, que foram recravadas e em seguida congeladas a -25°C. O produto final foi armazenado por 45 dias a -18°C e avaliado após 12h de descongelamento em temperatura de 5°C. Os resultados mostraram que a variedade Chandler apresenta características adequadas ao congelamento e que a adição de cálcio e pectina é útil a este tipo de processamento, colaborando para a diminuição da perda de líquido por exsudação, assim como redução de perdas de ácido ascórbico e não interferindo no sabor e na cor do produto.
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A perda do desempenho de uma edificação está associada ao aparecimento de patologias. A escolha de uma adequada terapia para os problemas encantrados, depende de um diagnóstico preciso do caso. A fissuração do concreto é alvo deste trabalho, por ser ela uma das manifestacoes patológicas mais incidentes nas edificacões, tanto a nível nacional como mundial. Nesse trabaho os diversos tipos de fissuras verificadas no concreto são agrupadas em ativas e passivas. Apresenta-se,H ainda, os materiais e técnicas de recuperacão para corrigir as fissuras dos dois grupos. Entre as soluções mais adotadas para recuperar as problemas patológicos, as que utilizam sistemas de base epóxi possuem destaque. O trabalho faz uma discussão sobre os fatores que influenciam o desempenho de sistemas epóxi destinados à injeção de fiissuras passivas do concreto e apresenta ensaios que podem ser realizados para garantir o sucesso da técnica. Ao final, apresenta um exemplo de avaliação de sistemas epóxi, encontradas no mercado nacional, destinados à injecão de fissuras e uma análise dos resultados obtidos.
Resumo:
A necessidade cada vez maior de efetuar a reabilitação de estruturas que apresentam manifestações patológicas faz com que os profissionais da área busquem continuamente aperfeiçoar os meios tradicionais utilizados para este fim e investigar novos materiais que apresentem vantagens técnicas e econômicas. A utilização de tecidos de fibra de carbono para reabilitação ou reforço de estruturas de concreto armado apresenta-se como uma nova alternativa que tem despertado grande interesse tanto no meio científico quanto no meio profissional, justificando-se o seu estudo. A presente pesquisa investiga a sanidade do reforço quando submetido a elevadas temperaturas, uma vez que o risco de perda da integridade durante um incêndio constitui uma das principais preocupações no que se refere a esta nova técnica, pois a aderência do tecido ao substrato é realizada com adesivo epóxi, altamente vulnerável ao efeito do calor. A degradação em termos de perda de resistência do reforço é avaliada para temperaturas variando de 80 °C à 240 °C e tempos de exposição de 30 à 120 min. Proteções passivas com argamassa de revestimento e gesso aplicadas sobre a matriz de epóxi, como forma de atenuar a degradação do polímero, são também investigadas Pesquisas e várias combinações destas variáveis e os resultados indicam que o adesivo epóxi apresenta um processo de volatilização crescente com o aumento da temperatura, comprometendo a eficácia da técnica de reforço; no entanto, a aplicação de revestimentos incombustíveis e isolantes sobre os elementos reforçados retarda este fenômeno. O estabelecimento do que se constitui em boa técnica para a aplicação de reforço com tecidos de fibra de carbono é de vital importância para evitar o colapso de elementos estruturais reforçados ou, ao menos, garantir estanqueidade e isolamento dos mesmos por um intervalo de tempo suficiente que possibilite a retirada dos ocupantes e as operações de combate ao incêndio em condições de segurança.
Resumo:
Os compostos de concreto polímero vem se tornando, em países desenvolvidos, uma boa opção para a construção civil, especialmente onde se necessita resistência elevada, cura rápida e boa durabilidade. Grande parte destes compostos são produzidos com as resinas epóxi e poliéster, em especial, a isoftálica. No Brasil, entretanto, não se tem conhecimento da aplicação e nem mesmo de grupos de pesquisa e desenvolvimento sistematizados, atuando na área, possivelmente devido ao desconhecimento das propriedades, da metodologia de produção e do alto custo do concreto polímero. Diante deste panorama, o presente trabalho tem como objetivo produzir e analisar composições de concreto polímero de custos reduzidos, utilizando como aglomerante a resina poliéster ortoftálica, em função de seu custo, e a resina poliéster isoftálica, que tem sido tradicionalmente utilizada. Inicialmente foram determinadas a resistência à compressão axial e absorção de água em composições de concreto polímero, com variados teores de resina, visando a escolha de um teor de aglomerante mínimo. Na segunda parte do programa experimental foi analisada a influência do teor de cinza volante (fíler) e do tipo de resina na resistência à compressão axial, na resistência à tração na flexão, no comportamento frente ao ataque químico, no módulo de elasticidade e no desgaste por abrasão. A microestrutura das amostras que sofreram ataque químico foi analisada em microscópio eletrônico de varredura. Os resultados mostraram que os concretos polímeros de resina poliéster isoftálica e ortoftálica exibiram bom comportamento mecânico e químico. A cinza volante contribui tanto no aspecto mecânico, quanto no químico. Constatou-se que a resina ortoftálica, quando utilizada simultaneamente com areia e cinza volante, exibe comportamento semelhante à resina isoftálica no concreto polímero, apesar das propriedades da resina poliéster ortoftálica serem inferiores as da isoftálica.
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Pipelines for the transport of crude oil from the production wells to the collecting stations are named production lines . These pipes are subjected to chemical and electrochemical corrosion according to the environment and the type of petroleum transported. Some of these lines, depending upon the composition of the fluid produced, may leak within less than one year of operation due to internal corrosion. This work aims at the development of composite pipes with an external protecting layer of high density polyurethane for use in production lines of onshore oil wells, meeting operational requirements. The pipes were manufactured using glass fibers, epoxy resin, polyester resin, quartz sand and high density polyurethane. The pipes were produced by filament winding with the deposition of high density polyurethane on the external surface and threaded ends (API 15 HR/PM-VII). Three types of pipes were manufactured: glass/epoxy, glass/epoxy with an external polyurethane layer and glass/epoxy with an intermediate layer of glass fiber, polyester, sand and with an external polyurethane layer. The three samples were characterized by Scanning Electronic Microscopy (SEM) and for the determination of constituent content. In addition, the following tests were conducted: hydrostatic test, instant rupture, shorttime failure pressure, Gardner impact, transverse stiffness and axial tension. Field tests were conducted in Mossoró RN (BRAZIL), where 1,677 meters of piping were used. The tests results of the three types of pipes were compared in two events: after two months from manufacturing of the samples and after nine months of field application. The results indicate that the glass/epoxy pipes with an intermediate layer of fiber glass composite, polyester e sand and with an external layer of high density polyurethane showed superior properties as compared to the other two and met the requirements of pressure class, axial tensile strength, transverse stiffness, impact and environmental conditions, for onshore applications as production lines
Resumo:
Polymer matrix composites offer advantages for many applications due their combination of properties, which includes low density, high specific strength and modulus of elasticity and corrosion resistance. However, the application of non-destructive techniques using magnetic sensors for the evaluation these materials is not possible since the materials are non-magnetizable. Ferrites are materials with excellent magnetic properties, chemical stability and corrosion resistance. Due to these properties, these materials are promising for the development of polymer composites with magnetic properties. In this work, glass fiber / epoxy circular plates were produced with 10 wt% of cobalt or barium ferrite particles. The cobalt ferrite was synthesized by the Pechini method. The commercial barium ferrite was subjected to a milling process to study the effect of particle size on the magnetic properties of the material. The characterization of the ferrites was carried out by x-ray diffraction (XRD), field emission gun scanning electron microscopy (FEG-SEM) and vibrating sample magnetometry (VSM). Circular notches of 1, 5 and 10 mm diameter were introduced in the composite plates using a drill bit for the non-destructive evaluation by the technique of magnetic flux leakage (MFL). The results indicated that the magnetic signals measured in plates with barium ferrite without milling and cobalt ferrite showed good correlation with the presence of notches. The milling process for 12 h and 20 h did not contribute to improve the identification of smaller size notches (1 mm). However, the smaller particle size produced smoother magnetic curves, with fewer discontinuities and improved signal-to-noise ratio. In summary, the results suggest that the proposed approach has great potential for the detection of damage in polymer composites structures
Resumo:
This work studied the immiscible blend of elastomeric poly(methyl methacrylate) (PMMA) with poly(ethylene terephthalate) (PET) bottle grade with and without the use of compatibilizer agent, poly(methyl methacrylate-co-glycidyl methacrylate - co-ethyl acrylate) (MGE). The characterizations of torque rheometry, melt flow index measurement (MFI), measuring the density and the degree of cristallinity by pycnometry, tensile testing, method of work essential fracture (EWF), scanning electron microscopy (SEM) and transmission electron microscopy (TEM) were performed in pure polymer and blends PMMA/PET. The rheological results showed evidence of signs of chemical reaction between the epoxy group MGE with the end groups of the PET chains and also to the elastomeric phase of PMMA. The increase in the concentration of PET reduced torque and adding MGE increased the torque of the blend of PMMA/PET. The results of the MFI also show that elastomeric PMMA showed lower flow and thus higher viscosity than PET. In the results of picnometry observed that increasing the percentage of PET resulted in an increase in density and degree crystallinity of the blends PMMA/PET. The tensile test showed that increasing the percentage of PET resulted in an increase in ultimate strength and elastic modulus and decrease in elongation at break. However, in the phase inversion, where the blend showed evidence of a co-continuous morphology and also, with 30% PET dispersed phase and compatibilized with 5% MGE, there were significant results elongation at break compared to elastomeric PMMA. The applicability of the method of essential work of fracture was shown to be possible for most formulations. And it was observed that with increasing elastomeric PMMA in the formulations of the blends there was an improvement in specific amounts of essential work of fracture (We) and a decrease in the values of specific non-essential work of fracture (βWp)
Resumo:
The research and development of wind turbine blades are essential to keep pace with worldwide growth in the renewable energy sector. Although currently blades are typically produced using glass fiber reinforced composite materials, the tendency for larger size blades, particularly for offshore applications, has increased the interest on carbon fiber reinforced composites because of the potential for increased stiffness and weight reduction. In this study a model of blade designed for large generators (5 MW) was studied on a small scale. A numerical simulation was performed to determine the aerodynamic loading using a Computational Fluid Dynamics (CFD) software. Two blades were then designed and manufactured using epoxy matrix composites: one reinforced with glass fibers and the other with carbon fibers. For the structural calculations, maximum stress failure criterion was adopted. The blades were manufactured by Vacuum Assisted Resin Transfer Molding (VARTM), typical for this type of component. A weight comparison of the two blades was performed and the weight of the carbon fiber blade was approximately 45% of the weight of the fiberglass reinforced blade. Static bending tests were carried out on the blades for various percentages of the design load and deflections measurements were compared with the values obtained from finite element simulations. A good agreement was observed between the measured and calculated deflections. In summary, the results of this study confirm that the low density combined with high mechanical properties of carbon fibers are particularly attractive for the production of large size wind turbine blades
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Composite laminates with plies in different directions finely dispersed are classified as homogenized. The expected benefits of homogenization include increased mechanical strength, toughness and resistance to delamination. The objective of this study was to evaluate the effect of stacking sequence on the tensile strength of laminates. Composite plates were fabricated using unidirectional layers of carbon/epoxy prepreg with configurations [903/303/-303]S and [90/30/-30]3S. Specimens were subjected to tensile and open hole tension (OHT) tests. According to the experimental results, the mean values of strength for the homogenized laminates [90/30/-30]3S were 140% and 120% greater for tensile and OHT tests, respectively, as compared to laminates with configuration [903/303/-303]S. The increase in tensile strength for more homogenized laminates was associated with the increment in interlaminar interfaces, which requires more energy to produce delamination, and the more complicated crack propagation through plies with different orientations. OHT strength was not affected by the presence of the hole due to the predominance of the interlaminar shear stress in relation to the stress concentration produced by the hole
Resumo:
As most current studies, reinforced plastics have been, in recent years, a viable alternative in building structural elements of medium and large, since the lightness accompanied by high performance possible. The design of hybrid polymer composites (combination of different types of reinforcements) may enable structural applications thereof, facing the most severe service conditions. Within this class of composite materials, reinforced the underlying tissues hybrid high performance are taking space when your application requires high load bearing and high rigidity. The objective of this research work is to study the challenges in designing these fabrics bring these materials as to its mechanical characterization and fracture mechanisms involved. Some parameters associated with the process and / or form of hybridization stand out as influential factors in the final performance of the material such as the presence of anisotropy, so the fabric weave, the process of making the same, normative geometry of the specimens, among others. This sense, four laminates were developed based hybrid reinforcement fabrics involving AS4 carbon fiber, kevlar and glass 49-E as the matrix epoxy vinyl ester resin (DERAKANE 411-350). All laminates were formed each with four layers of reinforcements. Depending on the hybrid fabric, all the influencing factors mentioned above have been studied for laminates. All laminates were manufactured industrially used being the lamination process manual (hand-lay-up). All mechanical characterization and study of the mechanism of fracture (fracture mechanics) was developed for laminates subjected to uniaxial tensile test, bending in three and uniaxial compression. The analysis of fracture mechanisms were held involving the macroscopic, optical microscopy and scanning electron microscopy
Resumo:
The utilization of synthetic fibers for plastic reinforcement is more and more frequent and this growing interest requires that their mechanic behavior under the most variable conditions of structural applications be known. The use of such materials in the open and exposed to the elements is one of them. In this case, it becomes extremely necessary to study their mechanical properties (strength, stiffness) and the mechanism of fracture by which the environment aging them out. In order to do that, the material must be submitted to hot steam and ultraviolet radiation exposure cycles, according to periods of time determined by the norms. This study proposal deals with the investigation of accelerated environmental aging in two laminated polymeric composites reinforced by hybrid woven made up of synthetic fibers. The configurations of the laminated composites are defined as: one laminate reinforced with hybrid woven of glass fibers/E and Kevlar fibers/49 (LHVK) and the other laminate is reinforced with hybrid tissue of glass fibers/E and of carbon fibers AS4 (LHVC). The woven are plane and bidirectional. Both laminates are impregnated with a thermofix resin called Derakane 470-300 Epoxy Vinyl-Ester and they form a total of four layers. The laminates were industrially manufactured and were made through the process of hand-lay-up. Comparative analyses were carried out between their mechanical properties by submitting specimen to uniaxial loading tractions and three-point flexion. The specimen were tested both from their original state, that is, without being environmentally aging out, and after environmental aging. This last state was reached by using the environmental aging chamber
Resumo:
A superfície interna das bisnagas fabricadas com alumínio não revestido e revestido com resina epóxi, utilizadas para acondicionar cremes, pomadas, géis, etc., foram avaliadas quimicamente e por métodos microbiológicos correlacionados com a aderência de microrganismos. A prova da porosidade e da resistência à remoção da resina foi observada por meio do microscópio eletrônico de varredura (Topcon FM300) e estereoscópio Leica (MZ12) acoplado a Sistema de Digitalização de Imagens. Para avaliar a ação dos microrganismos foram utilizados corpos-de-prova esterilizados (discos de 10mm de diâmetro), imersos em caldo Mueller Hinton (Difco) e colocados em tubos de polipropileno com tampa de rosca (Corning). Foram inoculados tubos com meio de cultura para cada uma das suspensões bacterianas (10(9)UFC/mL) de Streptococcus agalactiae, Staphylococcus aureus, Acinetobacter lwoffii e Candida albicans, incubados a 37°C, sob agitação constante durante 12 dias. O meio de cultura era trocado a cada 3 dias. Após esse período, os corpos-de prova foram removidos, processados e observados em microscópio eletrônico de varredura JEOL-JSM (T330A). A observação por meio do microscopio eletrônico de varredura mostrou a aderência e a formação de biofilme sobre a superfície de alumínio não revestido e revestido com resina epóxi.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Corrosion usually occurs in pipelines, so that it is necessary to develop new surface treatments to control it. Surfactants have played an outstanding role in this field due to its capacity of adsorbing on metal surfaces, resulting in interfaces with structures that protect the metal at low surfactant concentrations. The appearance of new surfactants is a contribution to the area, as they increase the possibility of corrosion control at specific conditions that a particular oil field presents. The aim of this work is to synthesize the surfactants sodium 12 hydroxyocadecenoate (SAR), sodium 9,10-epoxy-12 hydroxyocadecanoate (SEAR), and sodium 9,10:12,13-diepoxy-octadecanoate (SEAL) and apply them as corrosion inhibitors, studying their action in environments with different salinities and at different temperatures. The conditions used in this work were chosen in order to reproduce oil field reality. The study of the micellization of these surfactants in the liquid-gas interface was carried out using surface tensiometry. It was observed that cmc increased as salt concentration was increased, and temperature and pH were decreased, while cmc decreased with the addition of two epoxy groups in the molecule. Using the values of cmc and the Gibbs equation, the values of Gibbs free energy of adsorption, area per adsorbed molecule, and surface excess were calculated. The surface excess increases as salt concentration and temperature decreases, increasing as pH is increased. The area per adsorbed molecule and the free energy of adsorption decrease with salt concentration, temperature, and pH increase. SAXS results showed that the addition of epoxy group in surfactant structure results in a decrease in the repulsion between the micelles, favoring the formation of more oblong micellar structures, ensuring a better efficiency of metal coverage. The increase in salt and surfactant concentrations provides an increase in micellar diameter. It was shown that the increase in temperature does not influence micellar structure, indicating thermal stability that is advantageous for use as corrosion inhibitor. The results of inhibition efficiency for the surfactants SEAR and SEAL were considered the best ones. Above cmc, adsorption occurred by the migration of micelles from the bulk of the solution to the metal surface, while at concentrations below cmc film formation must be due to the adsorption of semi-micellar and monomeric structures, certainly due to the presence of the epoxy group, which allows side interactions of the molecule with the metal surface. The metal resistance to corrosion presented values of 90% of efficiency. The application of Langmuir and Frumkin isotherms showed that the later gives a better description of adsorption because the model takes into account side interactions from the adsorbing molecules. Wettability results showed that micelle formation on the solid surface occurs at concentrations in the magnitude of 10-3 M, which isthe value found in the cmc study. This value also justifies the maximum efficiencies obtained for the measurements of corrosion resistance at this concentration. The values of contact angle as a function of time suggest that adsorption increases with time, due to the formation of micellar structures on metal surface