386 resultados para Magneto-reológicos


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Neste trabalho foram estudadas as propriedades morfológicas, estruturais e magnéticas de nanoestruturas de Fe crescidas em Si(111) vicinal. A análise de superfície foi feita usando microscopia de força atômica e microscopia de tunelamento, e as medidas de caracterização estrutural, por espectroscopia de absorção de raios-X. As propriedades magnéticas foram investigadas usando dois métodos distintos: efeito Kerr magneto-óptico e magnetômetro de força de gradiente alternado. Os substratos foram preparados quimicamente com uma solução NH4F e caracterizados por microscopia de força atômica. As análises morfológicas das superfícies permitiram classificá-las em dois grupos: Si(111)- monoatômicos e Si(111)-poliatômicos. Filmes finos de ferro de 1.5, 3, 6 e 12 nm foram crescidos sobre eles. A análise das superfícies indicou dois modos diferentes de crescimento do ferro; o sistema Fe(x)Si(111)-monoatômico resulta em grãos de ferro aleatoriamente distribuídos, e o sistema Fe(x)Si(111)-poliatômico em nanogrãos de ferro alongados na direção perpendicular aos degraus, auto-organizados. Particularmente no filme Fe(3 nm)/Si(111)-poliatômico, ao redor de metade dos grãos estão alinhados ao longo da direção [110] , ou seja, paralelo aos degraus. O padrão de nanogrãos de ferro alongados orientados perpendicular aos degraus foi interpretado com uma conseqüência da anisotropia induzida durante o processo de deposição e a topologia do substrato Si(111)-poliatômico. Uma forte relação entre a morfologia e a resposta magnética dos filmes foi encontrada. Um modelo fenomenológico foi utilizado para interpretar os dados experimentais da magnetização, e uma excelente concordância entre as curvas experimentais e calculadas foi obtida.

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Esta dissertação tem por objetivo contribuir à compreensão dos mecanismos e efeitos de dissipação de energia em estruturas mediante a utilização de materiais viscoelásticos. São obtidas experimentalmente as propriedades destes polímeros termoplásticos enfatizando seu uso como meio de redução das amplitudes de vibrações em estruturas submetidas a ações dinâmicas. Inicialmente, apresenta-se uma breve resenha histórica sobre o uso de materiais viscoelásticos com finalidade de amortecimento estrutural. São descritos modelos reológicos referentes ao comportamento mecânico, químico e térmico e também modelos matemáticos relacionados ao fenômeno do amortecimento necessários para o desenvolvimento do projeto dos amortecedores. A seguir, descreve-se detalhadamente o projeto, construção e análise de dissipadores de energia confeccionados com polímeros termoplásticos, mediante aplicações de carregamentos harmônicos cíclicos, é análisado seu comportamento. Finalmente, faz-se uma análise numérica da influência da incorporação de dissipadores numa estrutura real com problemas de vibrações excessivas. Conclusões sobre a aplicação deste tipo de amortecedor em estruturas em geral são apresentadas.

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Neste trabalho foi feito um estudo das propriedades reológicas, mecânicas e térmicas de blendas poliméricas contendo 1 e 10% em massa de polietileno de ultra alto peso molar (PEUAPM) e polietileno linear de média densidade (PELMD). As blendas foram obtidas por mistura em extrusora de rosca simples e em extrusora de rosca dupla, para fins de comparação. Na extrusão em rosca dupla foi acrescentado um terceiro componente - óleo mineral, cera ou polietileno de muito baixo peso Molar (PEMBPM) - a fim de promover uma melhor interação entre o PELMD e PEUAPM. As amostras obtidas por moldagem por injeção, rotomoldagem e moldagem por compressão foram submetidas a testes reológicos, térmicos e mecânicos. Foi analisada a influência do tipo de processamento e da composição das blendas sobre morfologia e as propriedades finais destas. A reometria rotacional indicou um gradual aumento da viscosidade das blendas com o aumento da quantidade de PEUAPM adicionado. Análises de microscopia eletrônica de varredura (MEV), microscopia ótica e calorimetria diferencial de varredura (DSC) indicaram uma separação de fases nas blendas, mesmo quando o terceiro componente foi adicionado. Entretanto, as blendas que contém agente de acoplamento apresentaram diferenças na morfologia final, como observado através das análises de microscopia ótica durante a cristalização do sistema polimérico e nas análises de MEV nas amostras moldadas por injeção Para todas as blendas moldadas por injeção, a resistência ao impacto foi menor do que a encontrada para o PELMD puro. Por outro lado, nas amostras rotomoldadas não houve diferença significativa nas propriedades das blendas quando comparadas ao PELMD puro. As amostras extrusadas em rosca dupla, contendo óleo mineral ou cera e, posteriormente, moldadas por compressão apresentaram resistência ao impacto similares aos valores encontrados para o PELMD puro, sem significativas mudanças na processabilidade. Considerando as demais análises de propriedades mecânicas, não foi observada influência do terceiro componente.

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A obtenção de ligas metálicas em forma de pasta, com propriedades tixotrópicas apropriadas para serem utilizadas em processos de tixoconformação, pode ser realizada através de vários processos metalúrgicos. Destacam-se os processos de reofundidos obtidos a partir do líquido com a agitação mecânica do banho, ao longo da solidificação. Esses processos utilizam-se de rotores e propulsores, agitação mecânica usando o processo de duplo-parafuso e a agitação magneto hidrodinâmica. Outros procedimentos para a obtenção de pastas reofundidas a partir do líquido são o processo SCR (Shearing Cooling Roll), refino químico, ultra-som, processo spray, a nova reofundição NCR (New Rheocasting) e a reofundição elementar. As estruturas tixofundidas são obtidas a partir do metal sólido no qual, utiliza-se a refusão parcial de estruturas dendríticas, a fusão parcial de estruturas dendríticas deformadas (SIMA) e a fusão parcial sob pressão de estruturas dendríticas. No Trabalho em questão foram estudados os dois métodos para a obtenção de estruturas com propriedades tixotrópicas (Reofundição e Tixofundição). O primeiro processo explorado foi a agitação mecânica da liga AA7075 em seu estado semi-sólido, através de uma haste propulsora com pás recobertas por carbeto de cromo e contida em um cadinho especial de grafite. O segundo, foi a aplicação de tratamento isotérmico usando diversos patamares de tempos de aplicação e temperaturas. Este processo foi realizado por aquecimento indutivo na mesma liga AA7075, deformada anteriormente por extrusão direta. As microestruturas foram caracterizadas através dos diâmetros e formas dos glóbulos, utilizando o fator de forma específico em um programa de análise de imagens.

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Neste trabalho é apresentada a caracterização de amostras de filmes finos granulares de Fe- Al2O3, obtidas por evaporação em ultra alto vácuo. Duas amostras com composições diferentes foram obtidas. A espectroscopia de Espalhamento de Rutherford (Rutherford Backscattering Spectroscopy - RBS) foi utilizada para determinar a fração volumétrica de metal e a espessura das amostras, cujos valores obtidos foram 43% e 34% respectivamente. A morfologia das amostras foi investigada por difração de raios-x a qual mostrou a existência de grãos de ferro com 30Å de diâmetro e orientação cristalina preferencial (110) embebidos em uma matriz amorfa de Al2O3. As medidas de magnetização também mostraram que as duas amostras apresentavam uma distribuição de tamanhos de grão de ferro com valor médio de 24Å, estando de acordo com os resultados obtidos por difração de raios-x. A magneto-resistência observada em temperatura ambiente pode ser explicada pelo tunelamento dependente de spin dos elétrons de condução entre os grãos de ferro. Os resultados das medidas de RxT e IxV mostraram que o principal mecanismo de transporte foi o tunelamento termicamente ativado, o que está de acordo com a teoria apresentada por Abeles.

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A formação de emulsão de água-em-óleo gera um significativo incremento na viscosidade, o que afeta diretamente a produção do poço, pois aumenta a perda de carga ao longo da linha de produção, dificultando o escoamento e diminuindo a produção de óleo. A presença e natureza da emulsão, e seu impacto na reologia do petróleo, podem determinar a viabilidade econômica e técnica dos processos envolvidos. A medida que a fração de água aumenta e a temperatura é reduzida, o comportamento das emulsões se torna cada vez mais não-Newtoniano. A decorrência disso, é que a temperatura e a taxa de cisalhamento passam a ter maior impacto na variação da viscosidade das emulsões. Nesse estudo são propostos novos métodos que levam em conta essas variáveis. Os dados reológicos experimentais de 15 petróleos leves foram utilizados para avaliar o desempenho dos modelos existentes na literatura e compará-los com os novos métodos propostos nesse estudo.

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Nowadays, the search for new technologies that are able to follow the upcoming challenges in oil industry is a constant. Always trying properties improvements of the used materials, looking for the best performance and greater life time. Besides the search for technologies that show an improvement of performance, the search for materials environmentally correct along the whole production process. In Oil well cementing, this search for new technologies passes through the development of slurry systems that support these requests and that are also environmentally friendly. In this context, the use of geopolymer slurries is a great alternative route to cementing oil wells. Besides having good properties, comparable to Portland cement slurries, this alternative material releases much less CO2 gas in the production of their root materials when compared the production of Portland cement, which releases tons of CO2. In order to improve the properties of geopolymer slurries has been added Calcium Oxide, as observed in other studies that slurries where the Calcium is present the values of compressive strength is greater. The addition has been realized based in the CaO/SiO2 molar ratio of 0.05, 0.10 and 0.15. Have been performed compressive strength tests, thickening time, rheology and fliud loss control test of the slurries, following NBR 9831, as well as the physical chemical characterization of XRD, SEM and TG. Has been observed in most of the tests the slurries follow a tendency until the ratio of 0.10, which inverses in the ratio 0.15. This behavior can be explained by two phenomena that occur simultaneously, the first one is the break of the polymer chains and a consequent increase in molucules mobility, which prevails until the ratio of 0.1, and the second is possible approach of the chains due to the capacity of the calcium ions stabilize the charges of two different aluminum. There is only one linearity in the mechanical behavior that can be attributed to the appereance of the C-S-H phase. Based on this, it is concluded that the phenomenon of breaking the polymer chains predominates until the ratio of 0.1, causing an increase of the filtrate volume, lower rheological parameters and increasing thickening time. From the ratio of 0.15 the approach of the chains predominates, and the behavior is reversed

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The oil wells cementing is a critical step during the phase of well drilling, because problems during the operation of slurry pumping and an incomplete filling of the annular space between the metal casing and the formation can cause the slurry loss. Therefore, the slurry adopted in primary cementing an oil well must be properly dosed so that these problems are avoided during its pumping. When you drill a well in a weak rock formation requires even more careful, because should be a limit of hydrostatic pressure exerted during cementation, that does not occur rock collapse. With the objective of performing the cementing of a well whose formation is weak or unconsolidated are employed lighter slurries. Thus, this study used slurries with sodium silicate and nano silica in concentrations of 0,1; 0,4; 0,7 e 1,0 gpc, in which the slurries with nano silica showed the rheological parameters higher concentrations of up to 0.7 gpc and for concentration of 1.0 the slurry with sodium silicate obtained the highest values, remaining above the limits for application in fields, mainly wells with low fracture gradient, because a significant increase in viscosity may result in an increase in pressure pumping in operations of secondary cementations. Furthermore, there was no decrease in strength with increasing concentration of additive. Then, it is possible use of these additives to formulate Lighter slurry

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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)

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The isolation of adjacent zones encountered during oilwell drilling is carried out by Portland-based cement slurries. The slurries are pumped into the annular positions between the well and the casing. Their rheological behavior is a very important component for the cementing process. Nowadays, several alternative materials are used in oilwell cementing, with goal the modification and the improvement of their properties, mainly the increase of the fluidity. And this can be reached by using plasticizers additives able to account for different oilwell conditions, yielding compatible cement slurries and allowing enough time for the complete cementing operation. If the rheological properties of the slurry are properly characterized, the load loss and flow regime can be correctly predicted. However, this experimental characterization is difficult. Rheological models capable of describing the cement slurry behavior must be capable of predicting the slurry cement deformation within reasonable accuracy. The aim of this study was to characterize rheologically the slurries prepared with a especial class of Portland cement, water and plasticizers based on lignosulfonate, melamine and polycarboxylate at temperatures varying from 27°C to 72°C. The tests were carried out according to the practical recommendations of the API RP 10B guidelines. The results revealed a great efficiency and the dispersive power of the polycarboxylate, for all temperatures tested. This additive promoted high fluidity of the slurries, with no sedimentation. High lignosulfonate and melamine concentrations did not reduce the rheological parameters (plastic viscosity and yield stress) of the slurries. It was verified that these additives were not compatible with the type of cement used. The evaluated rheological models were capable of describing the behavior of the slurries only within concentration and temperature ranges specific for each type of additive

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The development of new materials to fill the demand of technological advances is a challenge for many researchers around the world. Strategies such as making blends and composites are promising alternatives to produce materials with different properties from those found in conventional polymers. The objective of this study is to evaluate the effect of adding the copolymer poly(ethylene methyl acrylate) (EMA) and cotton linter fibers (LB) on the properties of recycled poly(ethylene terephthalate) (PETrec) by the development of PETrec/EMA blend and PETrec/EMA/LB blend composite. In order to improve the properties of these materials were added as compatibilizers: Ethylene - methyl acrylate - glycidyl methacrylate terpolymer (EMA-GMA) and maleic anhydride grafted polyethylene (PE-g-MA). The samples were produced using a single screw extruder and then injection molded. The obtained materials were characterized by thermogravimetry (TG), melt flow index (MFI) mensurements, torque rheometry, pycnometry to determinate the density, tensile testing and scanning electron microscopy (SEM). The rheological results showed that the addition of the EMA copolymer increased the viscosity of the blend and LB reduces the viscosity of the blend composite. SEM analysis of the binary blend showed poor interfacial adhesion between the PETrec matrix and the EMA dispersed phase, as well as the blend composite of PETrec/EMA/LB also observed low adhesion with the LB fiber. The tensile tests showed that the increase of EMA percentage decreased the tensile strength and the Young s modulus, also lower EMA percentage samples had increased the elongation at break. The blend composite showed an increase in the tensile strength and in the Young`s modulus, and a decrease in the elongation at break. The blend formulations with lower EMA percentages showed better mechanical properties that agree with the particle size analysis which showed that these formulations presented a smaller diameter of the dispersed phase. The blend composite mechanical tests showed that this material is stronger and stiffer than the blend PETrec/EMA, whose properties have been reduced due to the presence of EMA rubbery phase. The use of EMA-GMA was effective in reducing the particle size of the EMA dispersed phase in the PETrec/EMA blend and PE-g-MA showed evidences of reaction with LB and physical mixture with the EMA

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The new oil reservoirs discoveries in onshore and ultra deep water offshore fields and complex trajectories require the optimization of procedures to reduce the stops operation during the well drilling, especially because the platforms and equipment high cost, and risks which are inherent to the operation. Among the most important aspects stands out the drilling fluids project and their behavior against different situations that may occur during the process. By means of sedimentation experiments, a correlation has been validated to determe the sedimentation particles velocity in variable viscosity fluids over time, applying the correction due to effective viscosity that is a shear rate and time function. The viscosity evolution over time was obtained by carrying out rheologic tests using a fixed shear rate, small enough to not interfere in the fluid gelling process. With the sedimentation particles velocity and the fluid viscosity over time equations an iterative procedure was proposed to determine the particles displacement over time. These equations were implemented in a case study to simulate the cuttings sedimentation generated in the oil well drilling during stops operation, especially in the connections and tripping, allowing the drilling fluid project in order to maintain the cuttings in suspension, avoiding risks, such as stuck pipe and in more drastic conditions, the loss of the well

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The primary cementing is an important step in the oilwell drilling process, ensuring the mechanical stability of the well and the hydraulic isolation between casing and formation. For slurries to meet the requirements for application in a certain well, some care in the project should be taken into account to obtain a cement paste with the proper composition. In most cases, it is necessary to add chemicals to the cement to modify its properties, according to the operation conditions and thus obtain slurries that can move inside the jacket providing a good displacement to the interest area. New technologies of preparation and use of chemicals and modernization of technological standards in the construction industry have resulted in the development of new chemical additives for optimizing the properties of building materials. Products such as polycarboxylate superplasticizers provide improved fluidity and cohesion of the cement grains, in addition to improving the dispersion with respect to slurries without additives. This study aimed at adapting chemical additives used in civil construction to be used use in oilwell cement slurries systems, using Portland cement CPP-Special Class as the hydraulic binder. The chemical additives classified as defoamer, dispersant, fluid loss controller and retarder were characterized by infrared absorption spectroscopy, thermogravimetric analyses and technological tests set by the API (American Petroleum Institute). These additives showed satisfactory results for its application in cement slurries systems for oil wells. The silicone-based defoamer promoted the reduction of air bubbles incorporated during the stirring of the slurries. The dispersant significantly reduced the rheological parameters of the systems studied. The tests performed with the fluid loss controller and the retarder also resulted in suitable properties for application as chemical additives in cement slurries

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Although there are a wide variety of additives that act in fresh state, to adjust the properties of cement, there is also a search by additions that improve the tenacity of the cement in the hardened state. This, in turn, can often be increased by inserting fibers, which act on the deflection of microcracks. This study aimed to use a microfiber glass wool (silica-based) as an additive reinforcing the cement matrix, improving the rupture tenacity, in order to prevent the propagation of microcracks in the cement sheath commonly found in oil wells submitted to high temperatures. The fibers were added at different concentrations, 2 to 5% (BWOC) and varied average sizes, grinding for 90 s, 180 s, 300 s, 600 s. The cement slurries were made with a density of 1,90 g/ cm3 (15,6 lb/gal), using Portland cement CPP- Special Class as the hydraulic binder and 40% silica flour. The characterization of the fiber was made by scanning electron microscopy (SEM), particle size by sieving, X-ray fluorescence (XRF), X-ray diffraction (XRD) and thermogravimetry (TG / DTG). Were performed technological tests set by the API (American Petroleum Institute) by rheology, stability, free water, compressive strength, as well as testing rupture energy, elastic modulus and permeability. The characterization results showed good thermal stability of the microfiber glass wool for application in oil wells submitted to steam injection and, also, that from the particle size data, it was possible to suggest that microfibers milled up to 300 s, are ideal to act as reinforcement to the cement slurries. The rheological parameters, there was committal of plastic viscosity when larger lengths were inserted of microfiber (F90). The values obtained by free water and stability were presented according to API. The mechanical properties, the incorporation of microfiber to the cement slurries gave better rupture tenacity, as compared to reference cement slurries. The values of compressive strength, elastic modulus and permeability have been maintained with respect to the reference cement slurries. Thus, cement slurries reinforced with microfiber glass wool can ensure good application for cementing oil wells submitted to steam injection, which requires control of microcracks, due to the thermal gradients

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Many challenges have been presented in petroleum industry. One of them is the preventing of fluids influx during drilling and cementing. Gas migration can occur as result of pressure imbalance inside the well when well pressure becomes lower than gas zone pressure and in cementing operation this occurs during cement slurry transition period (solid to fluid). In this work it was developed a methodology to evaluate gas migration during drilling and cementing operations. It was considered gel strength concept and through experimental tests determined gas migration initial time. A mechanistic model was developed to obtain equation that evaluates bubble displacement through the fluid while it gels. Being a time-dependant behavior, dynamic rheological measurements were made to evaluate viscosity along the time. For drilling fluids analyzed it was verified that it is desirable fast and non-progressive gelation in order to reduce gas migration without affect operational window (difference between pore and fracture pressure). For cement slurries analyzed, the most appropriate is that remains fluid for more time below critical gel strength, maintaining hydrostatic pressure above gas zone pressure, and after that gels quickly, reducing gas migration. The model developed simulates previously operational conditions and allow changes in operational and fluids design to obtain a safer condition for well construction